Multi-foldable electronic device comprising magnet
By employing magnets to maintain the fold state and enhance portability, the challenges of supporting the fold state and improving portability in foldable electronic devices are addressed, resulting in a more efficient and convenient device design.
Patent Information
- Application Number
- PCT/KR2024/096247
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-12-01
- Filing Date
- 2024-10-10
- Publication Date
- 2025-05-08
AI Technical Summary
Existing foldable electronic devices face challenges in maintaining the fold state and improving portability due to the lack of an effective support structure.
The use of magnets to maintain the fold state by aligning them to generate magnetic force between housings, ensuring continuous folding and improved portability.
The magnetic support structure effectively maintains the fold state and enhances portability by allowing the device to be easily folded and unfolded, while also optimizing the placement of electronic components for efficient use.
Smart Images

Figure KR2024096247_08052025_PF_FP_ABST
Abstract
Description
Multi-foldable electronic device containing magnets
[0001] Embodiments of the present disclosure relate to a multi-foldable electronic device including a magnet.
[0002] Electronic devices are becoming increasingly slimmer, with enhanced design aspects and differentiated functional elements. Electronic devices are evolving beyond their uniform rectangular form factor to embrace a variety of shapes. Electronic devices may have a transformable structure that allows for portability while also enabling the use of large-screen displays. For example, as part of this transformable structure, an electronic device may have a structure (e.g., a foldable structure) that allows the display area of a flexible display to be varied through the support of at least two housings that are rotatably coupled to each other. Such electronic devices may require a support structure that can maintain a folded state.
[0003] The above information may be provided as background art to aid in understanding the present disclosure. No claim or determination is made as to whether any of the above is applicable as prior art related to the present disclosure.
[0004] An electronic device (e.g., a portable communication device) may include a foldable electronic device that is deformable and has an expanded display area. The foldable electronic device may include a first housing and a second housing that can be folded relative to each other via a hinge module. In addition, the foldable electronic device may include a second housing that is rotatably coupled to one side of the first housing and a third housing that is rotatably coupled to the other side of the first housing. The three housings can be folded relative to each other. For example, the foldable electronic device may have improved portability in a fully folded state, and may provide a user with a large screen through a flexible display supported by two or three housings when the two or three housings are arranged side by side in a fully unfolded state.
[0005] Foldable electronic devices can improve portability by positioning two or three housings so that at least a portion of the housings overlap each other when folded. Accordingly, foldable electronic devices may require a support structure that can maintain the folded state (e.g., a retaining structure for maintaining the folded state).
[0006] Various embodiments of the present invention can provide a multi-foldable electronic device including a magnet that can help maintain a folded state continuously through magnetic force.
[0007] According to various embodiments, a multi-foldable electronic device can be provided that provides a large screen display area in an unfolded state and includes a magnet that can help improve portability in a folded state.
[0008] According to various embodiments, a multi-foldable electronic device can be provided that includes magnets that can help improve the placement efficiency of electronic components by placing them in consideration of the optimal placement position in each of the housings.
[0009] However, the problem to be solved in this disclosure is not limited to the problem mentioned above, and may be expanded in various ways without departing from the spirit and scope of this disclosure.
[0010] According to various embodiments, a portable communication device may include a multi-foldable housing including a first housing, a second housing, and a third housing, a first hinge structure disposed between the first housing and the second housing and rotatably connecting the first housing and the second housing with respect to each other, a second hinge structure disposed between the first housing and the third housing and rotatably connecting the first housing and the third housing with respect to each other, a flexible display disposed in the first housing, the second housing, and the third housing, a first magnet disposed in the first housing, a second magnet and a third magnet disposed in the second housing, and a fourth magnet disposed in the third housing.
[0011] A multi-foldable electronic device (e.g., a portable toe-in device) according to exemplary embodiments of the present disclosure includes magnets appropriately arranged in the internal space of the housings in consideration of the surrounding electronic components, and when in a folded state, the magnets are aligned to have an attractive force toward each other, thereby maintaining the folded state continuously and helping to improve portability and usability.
[0012] In addition, various effects may be provided, either directly or indirectly, through this document.
[0013] The effects that can be obtained from the present disclosure are not limited to the effects mentioned above, and other effects that are not mentioned can be clearly understood by a person having ordinary skill in the art to which the present disclosure belongs from the description below.
[0014] In connection with the description of the drawings, the same or similar reference numerals may be used for the same or similar components.
[0015] FIG. 1 is a block diagram of an electronic device in a network environment according to various embodiments of the present disclosure.
[0016] FIG. 2A is a front perspective view of a multi-foldable electronic device in a fully unfolded state according to various embodiments of the present disclosure.
[0017] FIG. 2b is a plan view of a multi-foldable electronic device in an unfolded state according to various embodiments of the present disclosure.
[0018] FIG. 2C is a rear perspective view of a multi-foldable electronic device in an unfolded state according to various embodiments of the present disclosure.
[0019] FIG. 3A is a front perspective view of a multi-foldable electronic device in a fully folded state according to various embodiments of the present disclosure.
[0020] FIGS. 3b and 3c are perspective views showing the rear surface of a multi-foldable electronic device in a folded state from various directions according to various embodiments of the present disclosure.
[0021] FIGS. 4A to 4C are drawings illustrating the operating states of a multi-foldable electronic device according to various embodiments of the present disclosure.
[0022] FIG. 4d is a cross-sectional view of a multi-foldable electronic device taken along line 4d-4d of FIG. 4c according to various embodiments of the present disclosure.
[0023] FIGS. 5A to 5E are exemplary diagrams showing various usage states of a multi-foldable electronic device according to various embodiments of the present disclosure.
[0024] FIGS. 6A through 6E are exploded perspective views of a multi-foldable electronic device viewed from the rear according to various embodiments of the present disclosure.
[0025] FIG. 6f is an exploded perspective view of a multi-foldable electronic device viewed from the front according to various embodiments of the present disclosure.
[0026] FIG. 7A is a plan view of a multi-foldable electronic device in an unfolded state, with the flexible display omitted, viewed from the front, according to various embodiments of the present disclosure.
[0027] FIG. 7b is a rear view of a multi-foldable electronic device in an unfolded state with the rear covers omitted, as viewed from the rear direction, according to various embodiments of the present disclosure.
[0028] FIG. 7C is a schematic diagram of an electronic device in which the housing is omitted in the drawing of FIG. 7A according to various embodiments of the present disclosure.
[0029] FIG. 7d is a schematic diagram of an electronic device with the housing omitted in the drawing of FIG. 7b according to various embodiments of the present disclosure.
[0030] FIG. 8 is a drawing illustrating an electrical connection structure between substrates in a multi-foldable electronic device according to various embodiments of the present disclosure.
[0031] FIG. 9A is a plan view of a multi-foldable electronic device in an unfolded state, schematically illustrating the arrangement of an extended panel portion of a flexible display according to various embodiments of the present disclosure.
[0032] FIG. 9b is a perspective view of a flexible display according to various embodiments of the present disclosure.
[0033] FIG. 9c is a cross-sectional view of an electronic device taken along line 9c-9c of FIG. 9a according to various embodiments of the present disclosure.
[0034] FIG. 9d is an enlarged view of area 9d of FIG. 9c according to various embodiments of the present disclosure.
[0035] FIG. 10A is a rear view of a multi-foldable electronic device in an unfolded state schematically illustrating the arrangement of an extended panel portion of a sub-display according to various embodiments of the present disclosure.
[0036] FIG. 10b is a configuration diagram of a sub-display according to various embodiments of the present disclosure.
[0037] FIG. 10c is a drawing comparing the housing-specific arrangement of sub-displays according to various embodiments of the present disclosure.
[0038] FIG. 11 is a plan view of a multi-foldable electronic device in an unfolded state, illustrating a speaker arrangement structure according to various embodiments of the present disclosure.
[0039] FIG. 12 is a configuration diagram of a multi-foldable electronic device illustrating an antenna arrangement structure according to various embodiments of the present disclosure.
[0040] FIG. 13A is a plan view of a multi-foldable electronic device showing a magnet arrangement structure in an unfolded state according to various embodiments of the present disclosure.
[0041] FIG. 13b is a plan view of a multi-foldable electronic device showing a magnet arrangement structure in a folded state according to various embodiments of the present disclosure.
[0042] FIG. 13c is a side view of a multi-foldable electronic device showing a magnet arrangement structure in a folded state according to various embodiments of the present disclosure.
[0043] FIG. 14a is a cross-sectional view of a multi-foldable electronic device taken along line 14a-14a of FIG. 13b according to various embodiments of the present disclosure.
[0044] FIG. 14b is a configuration diagram of a magnet according to various embodiments of the present disclosure.
[0045] FIG. 15A is a perspective view of a first hinge assembly according to various embodiments of the present disclosure.
[0046] FIG. 15b is a perspective view of a first hinge module according to various embodiments of the present disclosure.
[0047] FIG. 16A is a cross-sectional view of a multi-foldable electronic device in a folded state according to various embodiments of the present disclosure.
[0048] FIG. 16b is a perspective view of the third magnet of FIG. 16a according to various embodiments of the present disclosure.
[0049] FIG. 16c is a perspective view of a first hinge assembly supporting a flexible display according to various embodiments of the present disclosure.
[0050] FIGS. 17A to 17C are perspective views of a first hinge assembly supporting a flexible display according to various embodiments of the present disclosure.
[0051] FIGS. 18a and 18b are drawings illustrating the arrangement structure of the third magnet and the fourth magnet arranged in the first hinge assembly according to various embodiments of the present disclosure.
[0052] FIGS. 19A and 19B are drawings illustrating the arrangement structure of the first magnet and the second magnet arranged in the second hinge assembly according to various embodiments of the present disclosure.
[0053] FIG. 20A is a drawing showing the arrangement structure of the seventh magnet and the eighth magnet in the third housing according to various embodiments of the present disclosure.
[0054] Figure 20b is a comparative example drawing showing the arrangement structure of the seventh and eighth magnets in the third housing.
[0055] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings so that those skilled in the art can easily implement the present disclosure. However, the present disclosure may be implemented in various different forms and is not limited to the embodiments described herein. In connection with the description of the drawings, the same or similar reference numerals may be used for identical or similar components. Furthermore, in the drawings and related descriptions, descriptions of well-known functions and configurations may be omitted for clarity and conciseness.
[0056] FIG. 1 is a block diagram of an electronic device in a network environment according to various embodiments of the present disclosure.
[0057] Referring to FIG. 1, in a network environment (100), an electronic device (101) may communicate with an electronic device (102) via a first network (198) (e.g., a short-range wireless communication network), or may communicate with at least one of an electronic device (104) or a server (108) via a second network (199) (e.g., a long-range wireless communication network). In one embodiment, the electronic device (101) may communicate with the electronic device (104) via the server (108). According to one embodiment, the electronic device (101) may include a processor (120), a memory (130), an input module (150), an audio output module (155), a display module (160), an audio module (170), a sensor module (176), an interface (177), a connection terminal (178), a haptic module (179), a camera module (180), a power management module (188), a battery (189), a communication module (190), a subscriber identification module (196), or an antenna module (197). In some embodiments, the electronic device (101) may omit at least one of these components (e.g., the connection terminal (178)), or may have one or more other components added. In some embodiments, some of these components (e.g., the sensor module (176), the camera module (180), or the antenna module (197)) may be integrated into one component (e.g., the display module (160)).
[0058] The processor (120) may, for example, execute software (e.g., a program (140)) to control at least one other component (e.g., a hardware or software component) of the electronic device (101) connected to the processor (120) and perform various data processing or operations. According to one embodiment, as at least a part of the data processing or operations, the processor (120) may store commands or data received from other components (e.g., a sensor module (176) or a communication module (190)) in a volatile memory (132), process the commands or data stored in the volatile memory (132), and store result data in a non-volatile memory (134). According to one embodiment, the processor (120) may include a main processor (121) (e.g., a central processing unit or an application processor) or an auxiliary processor (123) (e.g., a graphics processing unit, a neural processing unit (NPU), an image signal processor, a sensor hub processor, or a communication processor) that can operate independently or together with the main processor (121). For example, when the electronic device (101) includes the main processor (121) and the auxiliary processor (123), the auxiliary processor (123) may be configured to use less power than the main processor (121) or to be specialized for a given function. The auxiliary processor (123) may be implemented separately from the main processor (121) or as a part thereof.
[0059] The auxiliary processor (123) may control at least a portion of functions or states associated with at least one component (e.g., a display module (160), a sensor module (176), or a communication module (190)) of the electronic device (101), for example, on behalf of the main processor (121) while the main processor (121) is in an inactive (e.g., sleep) state, or together with the main processor (121) while the main processor (121) is in an active (e.g., application execution) state. In one embodiment, the auxiliary processor (123) (e.g., an image signal processor or a communication processor) may be implemented as a part of another functionally related component (e.g., a camera module (180) or a communication module (190)). In one embodiment, the auxiliary processor (123) (e.g., a neural network processing unit) may include a hardware structure specialized for processing artificial intelligence models. The artificial intelligence models may be generated through machine learning. This learning can be performed, for example, on the electronic device (101) itself where the artificial intelligence model is executed, or can be performed through a separate server (e.g., server (108)). The learning algorithm can include, for example, supervised learning, unsupervised learning, semi-supervised learning, or reinforcement learning, but is not limited to the examples described above. The artificial intelligence model can include multiple artificial neural network layers.The artificial neural network may be one of a deep neural network (DNN), a convolutional neural network (CNN), a recurrent neural network (RNN), a restricted Boltzmann machine (RBM), a deep belief network (DBN), a bidirectional recurrent deep neural network (BRDNN), a deep Q-network, or a combination of two or more of the above, but is not limited to the examples described above. In addition to, or alternatively to, a hardware structure, an artificial intelligence model may include a software structure.
[0060] The memory (130) can store various data used by at least one component (e.g., processor (120) or sensor module (176)) of the electronic device (101). The data can include, for example, software (e.g., program (140)) and input data or output data for commands related thereto. The memory (130) can include volatile memory (132) or non-volatile memory (134).
[0061] The program (140) may be stored as software in the memory (130) and may include, for example, an operating system (142), middleware (144), or an application (146).
[0062] The input module (150) can receive commands or data to be used in a component of the electronic device (101) (e.g., a processor (120)) from an external source (e.g., a user) of the electronic device (101). The input module (150) can include, for example, a microphone, a mouse, a keyboard, a key (e.g., a button), or a digital pen (e.g., a stylus pen).
[0063] The audio output module (155) can output audio signals to the outside of the electronic device (101). The audio output module (155) can include, for example, a speaker or a receiver. The speaker can be used for general purposes, such as multimedia playback or recording playback. The receiver can be used to receive incoming calls. In one embodiment, the receiver can be implemented separately from the speaker or as part of the speaker.
[0064] The display module (160) can visually provide information to an external party (e.g., a user) of the electronic device (101). The display module (160) may include, for example, a display, a holographic device, or a projector and a control circuit for controlling the device. According to one embodiment, the display module (160) may include a touch sensor configured to detect a touch, or a pressure sensor configured to measure the intensity of a force generated by the touch.
[0065] The audio module (170) can convert sound into an electrical signal, or vice versa, convert an electrical signal into sound. According to one embodiment, the audio module (170) can acquire sound through the input module (150), output sound through the sound output module (155), or an external electronic device (e.g., electronic device (102)) (e.g., speaker or headphone) directly or wirelessly connected to the electronic device (101).
[0066] The sensor module (176) can detect the operating status (e.g., power or temperature) of the electronic device (101) or the external environmental status (e.g., user status) and generate an electrical signal or data value corresponding to the detected status. According to one embodiment, the sensor module (176) can include, for example, a gesture sensor, a gyro sensor, a barometric pressure sensor, a magnetic sensor, an acceleration sensor, a grip sensor, a proximity sensor, a color sensor, an IR (infrared) sensor, a biometric sensor, a temperature sensor, a humidity sensor, or an illuminance sensor.
[0067] The interface (177) may support one or more designated protocols that may be used to directly or wirelessly connect the electronic device (101) with an external electronic device (e.g., the electronic device (102)). In one embodiment, the interface (177) may include, for example, a high definition multimedia interface (HDMI), a universal serial bus (USB) interface, an SD card interface, or an audio interface.
[0068] The connection terminal (178) may include a connector through which the electronic device (101) may be physically connected to an external electronic device (e.g., electronic device (102)). According to one embodiment, the connection terminal (178) may include, for example, an HDMI connector, a USB connector, an SD card connector, or an audio connector (e.g., a headphone connector).
[0069] The haptic module (179) can convert electrical signals into mechanical stimuli (e.g., vibration or movement) or electrical stimuli that a user can perceive through tactile or kinesthetic sensations. According to one embodiment, the haptic module (179) can include, for example, a motor, a piezoelectric element, or an electrical stimulation device.
[0070] The camera module (180) can capture still images and videos. According to one embodiment, the camera module (180) may include one or more lenses, image sensors, image signal processors, or flashes.
[0071] The power management module (188) can manage power supplied to the electronic device (101). According to one embodiment, the power management module (188) can be implemented as, for example, at least a part of a power management integrated circuit (PMIC).
[0072] A battery (189) may power at least one component of the electronic device (101). In one embodiment, the battery (189) may include, for example, a non-rechargeable primary battery, a rechargeable secondary battery, or a fuel cell.
[0073] The communication module (190) may support the establishment of a direct (e.g., wired) communication channel or a wireless communication channel between the electronic device (101) and an external electronic device (e.g., electronic device (102), electronic device (104), or server (108)), and the performance of communication through the established communication channel. The communication module (190) may operate independently from the processor (120) (e.g., application processor) and may include one or more communication processors that support direct (e.g., wired) communication or wireless communication. According to one embodiment, the communication module (190) may include a wireless communication module (192) (e.g., a cellular communication module, a short-range wireless communication module, or a global navigation satellite system (GNSS) communication module) or a wired communication module (194) (e.g., a local area network (LAN) communication module, or a power line communication module). Among these communication modules, the corresponding communication module can communicate with an external electronic device (104) via a first network (198) (e.g., a short-range communication network such as Bluetooth, wireless fidelity (WiFi) direct, or infrared data association (IrDA)) or a second network (199) (e.g., a long-range communication network such as a legacy cellular network, a 5G network, a next-generation communication network, the Internet, or a computer network (e.g., a LAN or WAN)). These various types of communication modules can be integrated into a single component (e.g., a single chip) or implemented as multiple separate components (e.g., multiple chips). The wireless communication module (192) can verify or authenticate the electronic device (101) within a communication network such as the first network (198) or the second network (199) by using subscriber information (e.g., an international mobile subscriber identity (IMSI)) stored in the subscriber identification module (196).
[0074] The wireless communication module (192) can support 5G networks and next-generation communication technologies following the 4G network, such as NR access technology (new radio access technology). The NR access technology can support high-speed transmission of high-capacity data (eMBB (enhanced mobile broadband)), minimization of terminal power and connection of multiple terminals (mMTC (massive machine type communications)), or high reliability and low latency (URLLC (ultra-reliable and low-latency communications)). The wireless communication module (192) can support, for example, a high-frequency band (e.g., mmWave band) to achieve a high data transmission rate. The wireless communication module (192) can support various technologies for securing performance in a high-frequency band, such as beamforming, massive multiple-input and multiple-output (MIMO), full dimensional MIMO (FD-MIMO), array antenna, analog beam-forming, or large scale antenna. The wireless communication module (192) can support various requirements specified in the electronic device (101), an external electronic device (e.g., the electronic device (104)), or a network system (e.g., the second network (199)). According to one embodiment, the wireless communication module (192) can support a peak data rate (e.g., 20 Gbps or more) for eMBB realization, a loss coverage (e.g., 164 dB or less) for mMTC realization, or a U-plane latency (e.g., 0.5 ms or less for downlink (DL) and uplink (UL), or 1 ms or less for round trip) for URLLC realization.
[0075] The antenna module (197) can transmit or receive signals or power to or from an external device (e.g., an external electronic device). In one embodiment, the antenna module (197) may include an antenna including a radiator formed of a conductor or a conductive pattern formed on a substrate (e.g., a PCB). In one embodiment, the antenna module (197) may include a plurality of antennas (e.g., an array antenna). In this case, at least one antenna suitable for a communication method used in a communication network, such as the first network (198) or the second network (199), may be selected from the plurality of antennas, for example, by the communication module (190). A signal or power may be transmitted or received between the communication module (190) and an external electronic device via the at least one selected antenna. In some embodiments, in addition to the radiator, another component (e.g., a radio frequency integrated circuit (RFIC)) may be additionally formed as a part of the antenna module (197).
[0076] According to various embodiments, the antenna module (197) may form a mmWave antenna module. In one embodiment, the mmWave antenna module may include a printed circuit board, an RFIC disposed on or adjacent a first side (e.g., a bottom side) of the printed circuit board and capable of supporting a designated high-frequency band (e.g., a mmWave band), and a plurality of antennas (e.g., an array antenna) disposed on or adjacent a second side (e.g., a top side or a side side) of the printed circuit board and capable of transmitting or receiving signals in the designated high-frequency band.
[0077] At least some of the above components can be interconnected and exchange signals (e.g., commands or data) with each other via a communication method between peripheral devices (e.g., a bus, GPIO (general purpose input and output), SPI (serial peripheral interface), or MIPI (mobile industry processor interface)).
[0078] According to various embodiments, commands or data may be transmitted or received between the electronic device (101) and an external electronic device (104) via a server (108) connected to a second network (199). Each of the external electronic devices (102 or 104) may be the same or a different type of device as the electronic device (101). According to one embodiment, all or part of the operations executed in the electronic device (101) may be executed in one or more of the external electronic devices (102, 104, or 108). For example, when the electronic device (101) is to perform a certain function or service automatically or in response to a request from a user or another device, the electronic device (101) may, instead of or in addition to executing the function or service itself, request one or more external electronic devices to perform the function or at least a part of the service. One or more external electronic devices that receive the request may execute at least a portion of the requested function or service, or an additional function or service related to the request, and transmit the result of the execution to the electronic device (101). The electronic device (101) may process the result as is or additionally and provide it as at least a portion of a response to the request. For this purpose, cloud computing, distributed computing, mobile edge computing (MEC), or client-server computing technology may be used, for example. The electronic device (101) may provide an ultra-low latency service by using distributed computing or mobile edge computing, for example. In another embodiment, the external electronic device (104) may include an Internet of Things (IoT) device. The server (108) may be an intelligent server utilizing machine learning and / or a neural network. According to one embodiment, the external electronic device (104) or the server (108) may be included in the second network (199).The electronic device (101) can be applied to intelligent services (e.g., smart home, smart city, smart car, or healthcare) based on 5G communication technology and IoT-related technology.
[0079] The electronic device (200) of FIGS. 2A and 2B may be at least partially similar to the electronic device (101) of FIG. 1, or may further include other embodiments of the electronic device.
[0080] FIG. 2A is a front perspective view of a multi-foldable electronic device in a fully unfolded state according to various embodiments of the present disclosure. FIG. 2B is a plan view of the multi-foldable electronic device in a fully unfolded state according to various embodiments of the present disclosure. FIG. 2C is a rear perspective view of the multi-foldable electronic device in a fully unfolded state according to various embodiments of the present disclosure.
[0081] FIG. 3A is a front perspective view of a multi-foldable electronic device in a fully folded state according to various embodiments of the present disclosure. FIGS. 3B and 3C are perspective views showing the rear surface of the multi-foldable electronic device in a fully folded state from various directions according to various embodiments of the present disclosure.
[0082] The multi-foldable electronic device (200) of FIGS. 2A to 3C may be at least partially similar to the electronic device (101) of FIG. 1, or may further include other embodiments of the multi-foldable electronic device.
[0083] Referring to FIGS. 2A to 3C, a multi-foldable electronic device (200) (e.g., a portable communication device or an electronic device) (e.g., an electronic device (101) of FIG. 1) includes a first housing (210) (e.g., a first housing portion), a first hinge assembly (e.g., a first hinge assembly (HA1) of FIG. 4D) that is rotatably connected to the first housing (210) in a direction (e.g., a right side) of the first housing (210) (e.g., an x-axis direction), a second housing (220) (e.g., a second housing portion) that is rotatably connected to the first housing (210) in a direction (e.g., a -x-axis direction) of the other side (e.g., a left side) of the first housing (210) (e.g., a -x-axis direction), and a second hinge assembly (e.g., a second hinge assembly (HA2) of FIG. 4D) that is rotatably connected to the first housing (210) in a direction (e.g., a -x-axis direction) of the first housing (210). The first housing (210) may include a third housing (230) (e.g., a third housing portion) rotatably connected with respect to the second folding axis (F2). In one embodiment, the first hinge assembly (HA1) may include a first hinge housing (266) that accommodates at least one first hinge module (e.g., a first hinge device or a first hinge structure) that connects the first housing (210) and the second housing (220), and the second hinge assembly (HA2) may include a second hinge housing (267) that accommodates at least one second hinge module (e.g., a second hinge device or a second hinge structure) that connects the first housing (210) and the third housing (230). In one embodiment, the first hinge housing (266) may cover the first hinge module so that it is not visible from the outside when the first housing (210) and the second housing (220) are in a fully folded state or a folded state. In one embodiment, the first hinge housing (266) may be arranged so that it is not visible from the outside when the first housing (210) and the second housing (220) are in a fully unfolded state.In one embodiment, the second hinge housing (267) may cover the second hinge module so that it is not visible from the outside when the first housing (210) and the third housing (230) are in a fully folded state or a folded state. In one embodiment, the second hinge housing (267) may be arranged so that it is not visible from the outside when the first housing (210) and the third housing (230) are in a fully unfolded state. In one embodiment, the multi-foldable electronic device (200) may include a foldable housing (e.g., a multi-foldable housing) configured through the first housing (210), the second housing (220), the third housing (230), the first hinge housing (266), and the second hinge housing (267). In some embodiments, the multi-foldable electronic device (200) may include a foldable housing configured through a first housing (210), a second housing (220), and a third housing (230). In one embodiment, the multi-foldable electronic device (200) may include a flexible display (240) (e.g., a first display) that is arranged to be supported by the first housing (210), the second housing (220), and the third housing (230). In one embodiment, the multi-foldable electronic device (200) may include a sub-display (250) (e.g., a second display) that is arranged through the third housing (230). In this document, the surface on which the flexible display (240) is arranged may be defined as the front surface of the multi-foldable electronic device (200), and the surface opposite to the front surface may be defined as the back surface of the multi-foldable electronic device (200). In one embodiment, the surface surrounding the space between the front and back surfaces may be defined as a side surface of the electronic device (200).In this document, a state in which the first housing (210), the second housing (220), and the third housing (230) of the multi-foldable electronic device (200) are fully unfolded may be defined as a 'first state' or a 'fully unfolded state', a state in which the first housing (210), the second housing (220), and the third housing (230) are fully folded with respect to each other may be defined as a 'second state' or a 'fully folded state', and a state in which only the first housing (210) and the second housing (220) are folded with respect to each other may be defined as a 'third state' or an 'intermediate state'.
[0084] According to various embodiments, the first housing (210) may include a first surface (211), a second surface (212) facing opposite to the first surface (211), and a first side member (213) surrounding a first space (2101) between the first surface (211) and the second surface (212). In one embodiment, at least a portion of the first side member (213) may form at least a portion of a side surface of the multi-foldable electronic device (200). In one embodiment, the first side member (213) may include a first side surface (2131) and a second side surface (2132) positioned opposite to the first side surface (2131). In one embodiment, the first housing (210) may include a first rear cover (214) coupled with the first side member (213). In one embodiment, the first space (2101) may be formed through a first rear cover (214) coupled with a first side member (213) on a second surface (212) of the first housing (210).
[0085] According to various embodiments, the second housing (220) may include a third side (221), a fourth side (222) facing opposite to the third side (221), and a second side member (223) surrounding a second space (2201) between the third side (221) and the fourth side (222). In one embodiment, at least a portion of the second side member (223) may form at least a portion of a side surface of the multi-foldable electronic device (200). In one embodiment, the second side member (223) may include a third side surface (2231), a fourth side surface (2232) extending in a direction perpendicular to the third side surface (2231), and a fifth side surface (2233) extending from the fourth side surface (2232) and being parallel to the third side surface (2231). In one embodiment, the second housing (220) may include a second rear cover (224) coupled with a second side member (223). In one embodiment, the sub-display (250) may be replaced to be disposed through at least a portion of the second rear cover (224) in the second housing (220). In some embodiments, the multi-foldable electronic device (200) may include an additional sub-display disposed through at least a portion of the second rear cover (224) in the second housing (220). In this case, when the first housing (210) and the second housing (220) are fully folded and the third housing (230) is partially folded (e.g., the third housing (230) is folded at an angle of about 90 degrees with respect to the first housing (210), the sub-display arranged on the fourth side (222) of the second housing (220) can be arranged to be visible from the outside. In one embodiment, the second space (2201) can be formed through the second rear cover (224) coupled with the second side member (223) on the fourth side (222).
[0086] According to various embodiments, the third housing (230) may include a fifth side (231), a sixth side (232) facing opposite to the fifth side (231), and a third side member (233) surrounding a third space (2301) between the fifth side (231) and the sixth side (232). In one embodiment, at least a portion of the third side member (233) may form at least a portion of a side surface of the multi-foldable electronic device (200). In one embodiment, the third side member (233) may include a sixth side surface (2331), a seventh side surface (2332) extending in a direction perpendicular to the sixth side surface (2331), and an eighth side surface (2333) extending from the seventh side surface (2332) and being parallel to the sixth side surface (2331). In one embodiment, the third space (2301) may be formed through a third rear cover (234) coupled with a third side member (233) at the sixth side (2331).
[0087] According to various embodiments, the first side (2131), the third side (2231), and the sixth side (2331) may form the same side (e.g., the lower side) of the multi-foldable electronic device (200). In one embodiment, the second side (2132), the fifth side (2233), and the eighth side (2333) may form the same side (e.g., the upper side) of the multi-foldable electronic device (200). In one embodiment, the fourth side (2232) may form one side (e.g., the right side) of the multi-foldable electronic device (200). In one embodiment, the seventh side (2332) may form one side (e.g., the left side) of the multi-foldable electronic device (200).
[0088] According to various embodiments, the multi-foldable electronic device (200) may be configured such that, in an unfolded state (e.g., a first state), the first housing (210), the second housing (220), and the third housing (230) are positioned side by side so that the first side (211), the third side (221), and the fifth side (231) face the same direction. In one embodiment, the multi-foldable electronic device (200) may be configured such that, in a folded state (e.g., a second state), the first housing (210), the second housing (220), and the third housing (230) are positioned in a sequentially stacked manner so that the first side (211) and the third side (221) face each other, and the fourth side (222) and the fifth side (231) face each other. In this case, the second side (212) and the sixth side (232) can be visible from the outside, and the third side (221) and the fourth side (222) can be positioned so as not to be visible from the outside through the first housing (210) and the third housing (230). In one embodiment, the sub-display (250) can be positioned so as to be visible from the outside through at least a portion of the sixth side (232) in the unfolded and / or folded state.
[0089] According to various embodiments, the first housing (210), the second housing (220), and the third housing (230) may have different sizes. In one embodiment, the first housing (210) may have a first width (HW1), the second housing (220) may have a second width (HW2) smaller than the first width (HW1), and the third housing (230) may have a third width (HW3) larger than the first width (HW1). For example, by defining these widths (HW1, HW2, HW3) of the housings (210, 220, 230), the multi-foldable electronic device (200) may be configured so that none of the housings protrudes outward when folded, thereby helping to improve an attractive appearance and portability. However, it is not limited thereto, and at least two of the first, second, and third widths (HW1, HW2, HW3) may be configured to be identical to each other.
[0090] According to various embodiments, the flexible display (240) may include a first region (240a) corresponding to at least a portion of the first housing (210), a second region (240b) extending from one side (e.g., the right side) of the first region (240a) and corresponding to at least a portion of the second housing (220), and a third region (240c) extending from the other side (e.g., the left side) of the first region (240a) and corresponding to at least a portion of the third housing (230). In one embodiment, the flexible display (240) may include a portion of a first region (240a) and a portion of a second region (240b), a fourth region (240d) that is flexible (e.g., a first folding region) corresponding to a first hinge assembly (HA1), and a fifth region (240e) that is flexible (e.g., a second folding region) corresponding to a second hinge assembly (HA2) and a portion of a first region (240a) and a portion of a third region (240c). In one embodiment, the region division of the flexible display (240) is merely an exemplary division by three housings (210, 220, 230) and two hinge assemblies (HA1, HA2), and the flexible display (240) may be displayed as a substantially seamless, single full screen. In one embodiment, the first region (240a) and the second region (240b) may have an overall symmetrical shape or a partially asymmetrical shape with respect to the fourth region (240d) and / or the first folding axis (F1). In one embodiment, the first region (240a) and the third region (240c) may have an overall symmetrical shape or a partially asymmetrical shape with respect to the fifth region (240e) and / or the second folding axis (F2). In one embodiment, the first folding width (BW1) of the fourth region (240d) may be smaller than the second folding width (BW2) of the fifth region (240e) in a direction perpendicular to the first folding axis (F1) (e.g., the x-axis direction). In some embodiments, the area of the fourth region (240d) may be smaller than the area of the fifth region (240e).This may be due to the fact that the first hinge assembly (HA1) connecting the first housing (210) and the second housing (220) and the second hinge assembly (HA2) connecting the first housing (210) and the third housing (230) are different from each other. For example, the size of at least one first hinge module (e.g., narrow hinge module) of the first hinge assembly (HA1) connecting the first housing (210) and the second housing (220) may be smaller than the size of at least one second hinge module (e.g., wide hinge module) of the second hinge assembly (HA2) connecting the first housing (210) and the third housing (230) and folding the flexible display (240) in a folded state. Through this configuration, the second hinge housing (267) can have a first receiving width (W1) that is larger than the thickness of the first housing (210), and the first hinge housing (266) can have a second receiving width (W2) that is smaller than the first receiving width (W1).
[0091] According to various embodiments, the electronic device (200) may include a first rear cover (214) disposed on a second side (212) of a first housing (210), a second rear cover (224) disposed on a fourth side (222) of a second housing (220), and a third rear cover (234) disposed on a sixth side (232) of a third housing (230). In some embodiments, at least a portion of the first rear cover (214) may be formed integrally with the first side member (213). In some embodiments, at least a portion of the second rear cover (224) may be formed integrally with the second side member (223). In some embodiments, at least a portion of the third rear cover (234) may be formed integrally with the third side member (233). In one embodiment, at least one of the first rear cover (214), the second rear cover (224), and the third rear cover (234) may be formed of a substantially transparent plate (e.g., a glass plate including various coating layers, or a polymer plate) or an opaque plate. In one embodiment, the first rear cover (214) and the second rear cover (224) may be formed of an opaque plate, such as, for example, coated or colored glass, ceramic, polymer, metal (e.g., aluminum, stainless steel (STS), or magnesium), or a combination of at least two of the foregoing materials. In one embodiment, the third rear cover (234) may be formed of a substantially transparent plate, such as, for example, glass or polymer. Accordingly, the sub-display (250) may be arranged so as to be visible from the outside through the third rear cover (234) in the third space (2301) of the third housing (230).
[0092] According to various embodiments, the multi-foldable electronic device (200) may include a first protective frame (261) (e.g., a first decorative member) and a second protective frame (262) (e.g., a second decorative member) disposed in a first housing (210) and arranged to cover an edge of a first region (240a) of a flexible display (240). In one embodiment, the first protective frame (261) may be disposed along a first side (2131) of the first housing (210), and the second protective frame (262) may be disposed along a second side (2132). In one embodiment, an edge of the flexible display (240) corresponding to the first housing (210) may be concealed from the outside through the first and second protective frames (261, 262). In one embodiment, the multi-foldable electronic device (200) may include a third protective frame (263) (e.g., a third decorative member) disposed in the second housing (220) and arranged to cover an edge of a second region (240b) of a flexible display (240). In one embodiment, the third protective frame (263) may be disposed along a third side (2231), a fourth side (2232), and a fifth side (2233) of the second housing (220). In one embodiment, an edge of the flexible display (240) corresponding to the second housing (220) may be concealed from the outside through the third protective frame (263). In one embodiment, the multi-foldable electronic device (200) may include a fourth protective frame (264) (e.g., a fourth decorative member) disposed in the third housing (230) and arranged to cover the edge of the third area (240c) of the flexible display (240). In one embodiment, the fourth protective frame (264) may be disposed along the sixth side (2331), the seventh side (2332), and the eighth side (2333) of the third housing (230).In one embodiment, the edge of the flexible display (240) corresponding to the third housing (230) may be concealed from the outside through the fourth protective frame (264). In some embodiments, at least one of the first, second, third, and fourth protective frames (261, 262, 263, 264) may be omitted.
[0093] According to various embodiments, the multi-foldable electronic device (200) may include a first protective member (265a) (e.g., a first protective cap) disposed between the first protective frame (261) and the third protective frame (263) in the fourth region (240d) and arranged to cover at least a portion of an edge of the flexible display (240), and a second protective member (265b) disposed between the second protective frame (262) and the third protective frame (263) and arranged to cover at least a portion of an edge of the flexible display (240). In one embodiment, the multi-foldable electronic device (200) may include a third protective member (265c) (e.g., a third protective cap) disposed between the first protective frame (261) and the fourth protective frame (264) in the fifth region (240e) and arranged to cover at least a portion of an edge of the flexible display (240), and a fourth protective member (265d) disposed between the second protective frame (262) and the fourth protective frame (264) and arranged to cover at least a portion of an edge of the flexible display (240). In one embodiment, at least one of the first, second, third, and fourth protective members (265a, 265b, 265c, 265d) may be omitted.
[0094] According to various embodiments, the electronic device (200) may include at least one electronic component arranged in at least one space among the first space (2101) of the first housing (210), the second space (2201) of the second housing (220), and / or the third space (2301) of the third housing (230). In one embodiment, at least one electronic component may include a flexible display (240) (e.g., a first display) disposed through a first housing (210), a second housing (220), and a third housing (230), a sub-display (250) (e.g., a second display) disposed in the third housing (230), at least one microphone (271a, 271b) (e.g., an input module or input device), at least one speaker (272a, 272b, 272c, 272d) (e.g., an audio output module or audio output device), at least one camera (273a, 273b, 273c) (e.g., a camera module or camera device), at least one sensor (274a, 274b, 274c) (e.g., a sensor module), at least one key button (275) (e.g., an input device or a physical key), a connector port (276), or a socket device (277). In some embodiments, the electronic device (200) may additionally include at least one other component. In some embodiments, at least one of the above-described components may be omitted.
[0095] According to various embodiments, the flexible display (240) may be placed in a receiving space formed by the housings (210, 220, 230). For example, the flexible display (240) may be placed in a recess formed by the housings (210, 220, 230), and may be placed to occupy substantially most of the front surface of the electronic device (200) when unfolded. In one embodiment, the sub-display (250) may be placed in a third space (2301) of the third housing (230) so as to be visible from the outside through the third rear cover (234).
[0096] In various embodiments, at least one microphone (271a, 271b) may include a first microphone (271a) positioned through a first side (2131) of the first housing (210) and a second microphone (271b) positioned through a second side (2132) of the first housing (210). In some embodiments, at least one microphone (271a, 271b) may be positioned on a third side (2231) and / or a fifth side (2233) of the second housing (220). In some embodiments, at least one microphone (271a, 271b) may be positioned on a sixth side (2331) and / or an eighth side (2333) of the third housing (230).
[0097] In various embodiments, at least one speaker (272a, 272b, 272c, 272d) may include a first speaker (272a) arranged to emit sound through a third side (2231) of the second housing (220), a second speaker (272b) arranged to emit sound through a fifth side (2233), a third speaker (272c) arranged to emit sound through a sixth side (2331) of the third housing (230), and a fourth speaker (272d) arranged to emit sound through an eighth side (2333). In one embodiment, at least one speaker (272a, 272b, 272c, 272d) may be symmetrically arranged to implement stereophonic sound (e.g., three-dimensional sound) in the unfolded or folded state of the multi-foldable electronic device (200). In one embodiment, the second speaker (272b) or the fourth speaker (272d) may be arranged near the user's ear in the folded state and may be used as a call receiver. In some embodiments, the multi-foldable electronic device (200) may further include an additional receiver (not shown) arranged in the third space (2301) of the third housing (230) and arranged to emit sound through a speaker hole provided in at least a portion of the third rear cover (234) or between the third rear cover (234) and the third side member (233). In some embodiments, at least one speaker (272a, 272b, 272c, 272d) may be replaced with an operative piezo speaker, excluding the hole formed in the second housing (220) and / or the third housing (230).
[0098] According to various embodiments, at least one camera (273a, 273b, 273c) may be disposed in the third space (2301) of the third housing (230), and may include a first camera (273a) disposed through a fifth side (231) of the third housing (230), a second camera (273b) disposed through a second side (212) of the first housing (210), and a third camera (273c) disposed through a sixth side (232) of the third housing (230). In one embodiment, at least one camera (273a, 273b, 273c) may include one or more lenses, an image sensor, and / or an image signal processor. In some embodiments, at least one camera (273a, 273b, 273c) includes two or more lenses (e.g., wide-angle and telephoto lenses) and image sensors, and may be arranged together on one side of a housing of any one of the first housing (210), the second housing (220), or the third housing (230). In some embodiments, the multi-foldable electronic device (200) may include a flash (not shown) arranged near the second camera (273b). In one embodiment, the flash may include, for example, a light-emitting diode or a xenon lamp.
[0099] According to various embodiments, at least one sensor (274a, 274b, 274c) may generate an electrical signal or data value corresponding to an internal operating state or an external environmental state of the multi-foldable electronic device (200). In one embodiment, at least one sensor (274a, 274b, 274c) may include a first sensor (274a) disposed on a fifth surface (231) of the third housing (230), a second sensor (274b) disposed on a second surface (212) of the first housing (210), and / or a third sensor (274c) disposed on a sixth surface (232) of the third housing (230). In some embodiments, the at least one sensor (274a, 274b, 274c) may include at least one of a gesture sensor, a grip sensor, a color sensor, an infrared (IR) sensor, a light sensor, an ultrasonic sensor, an iris recognition sensor, and a distance detection sensor (e.g., a time of flight (TOF) sensor or a light detection and ranging (LiDAR) sensor). In one embodiment, the multi-foldable electronic device (200) may further include at least one sensor, not shown, such as at least one of a barometric pressure sensor, a magnetic sensor, a biometric sensor, a temperature sensor, a humidity sensor, or a fingerprint recognition sensor. In some embodiments, the fingerprint sensor may be arranged to detect a user's fingerprint through at least a portion of the key button (275).
[0100] According to various embodiments, at least one camera (273a, 273b, 273c) and / or at least one sensor (274a, 274b, 274c) may be positioned to detect the external environment through the flexible display (240) and / or the sub-display (250). For example, at least one camera (273a, 273b, 273c) and / or at least one sensor (274a, 274b, 274c) may be arranged in the first space (2101) of the first housing (210) and / or the third space (2301) of the third housing (230), under the non-active display area or the active display area of the flexible display (240) and / or the sub-display (250), and may be arranged to be in contact with the external environment through an opening or transparent area perforated up to the cover member (e.g., window layer) and / or the third rear cover (234). In one embodiment, the area corresponding to at least one camera (273a, 273c) of the flexible display (240) and / or the sub-display (250) may be formed as a transparent area having a certain transmittance as part of an area displaying content. In one embodiment, the transparent region may be formed to have a transmittance in the range of about 5% to about 30%. The transparent region may include an area overlapping with an effective area (e.g., a field of view area) of at least one camera (273a, 273c) through which light passes to be imaged by the image sensor to generate an image. For example, the transparent region of the flexible display (240) and / or the sub-display (250) may include an area where the pixel arrangement density is lower than the surrounding area. For example, the transparent region may be replaced with an opening. For example, the at least one camera (273a, 273c) may include an under-display camera (UDC) or an under-panel camera (UPC).In one embodiment, some of the cameras (273a, 273c) or some of the sensors (274a, 274c) may be arranged to perform their functions without being visually exposed through the flexible display (240) and / or the sub-display (250). For example, an area of the flexible display (240) and / or the sub-display (250) corresponding to at least one camera (273a, 273c) and / or at least one sensor (274a, 274c) may not require a perforated opening.
[0101] According to various embodiments, at least one key button (275) may be arranged on the seventh side (2332) of the third housing (230). This may help improve usability by arranging the sixth side (232) to face upward for using the sub-display (250) when the multi-foldable electronic device (200) is in a folded state, and at least one key button (275) is positioned on the right side. In some embodiments, the multi-foldable electronic device (200) may not include some or all of the at least one key button (275), and the key buttons that are not included may be implemented in other forms, such as soft keys displayed on the flexible display (240) and / or the sub-display (250). In some embodiments, some of the at least one key button (275) may be implemented using at least one pressure sensor implemented through the flexible display (240) and / or the sub-display (250). In some embodiments, at least one key button (275) may be disposed on at least one of the first side (2131) or the second side (2132) of the first housing (210), the third side (2231) or the fifth side (2233) of the second housing (220), and / or the sixth side (2331) or the eighth side (2333) of the third housing (230), which may be used when the multi-foldable electronic device (200) is in an unfolded state and / or a folded state.
[0102] According to various embodiments, the connector port (276) may be arranged through the first side (2131) of the first housing (210). In one embodiment, the connector port (276) may include a connector (e.g., a USB connector or an IF module (interface connector port module)) structure for transmitting and receiving power and / or data with an external electronic device. In some embodiments, the connector port (276) may also perform a function for transmitting and receiving audio signals with the external electronic device, or may further include a separate connector port (e.g., an ear jack hole) for performing a function for transmitting and receiving audio signals. In some embodiments, the connector port (276) may be located on at least one of the second side (2132) of the first housing (210), the third side (2231), the fourth side (2232), or the fifth side (2233) of the second housing (220), and / or the sixth side (2331), the seventh side (2332), or the eighth side (2333) of the third housing (230), which may be used when the multi-foldable electronic device (200) is in an unfolded state and / or a folded state.
[0103] According to various embodiments, the socket device (277) may be disposed on the seventh side (2332) of the third housing (230) so that the multi-foldable electronic device (200) can be used even when folded. In one embodiment, the socket device (277) may include a tray retractably coupled from the seventh side (2332) to accommodate a SIM card or an external memory card. In some embodiments, the socket device (277) may be disposed on the sixth side (2331) and / or the eighth side (2333) of the third housing (230). In some embodiments, the socket device (277) may be positioned on one side of the first housing (210) (e.g., at least one of the first side (2131) or the second side (2132) of FIG. 2b) or one side of the second housing (220) (e.g., at least one of the third side (2231), the fourth side (2232) or the fifth side (2233) of FIG. 2b).
[0104] According to various embodiments, at least one microphone (271a, 271b), at least one speaker (272a, 272b, 272c, 272d), at least one key button (275), connector port (276) or socket device (277) may be exposed to the external environment through at least one hole (e.g., a through hole) formed in the first housing (210), the second housing (220) and / or the third housing (230).
[0105] According to various embodiments, the multi-foldable electronic device (200) may include an antenna member (278) disposed in the first space (2101) of the first housing (210). In one embodiment, the antenna member (278) may be disposed to transmit or receive a wireless signal through the second side (212) of the first housing (210) so that the multi-foldable electronic device (200) can operate even in a folded state. In one embodiment, the antenna member (278) may include an antenna that operates in a neat field communication (NFC), multi-function coil or multi-function core (MFC), and / or magnetic secure transmission (MST) manner to perform a wireless charging function, an electronic payment function, and / or a data transmission and reception function. In one embodiment, the antenna member (278) may also include an ultra-wide band (UWB) antenna that is used to detect a distance to an external electronic device or a location of the external electronic device (e.g., angle of arrival (AoA) positioning technique).
[0106] The multi-foldable electronic device (200) according to exemplary embodiments of the present disclosure can use a large screen display area in an unfolded state through the folding operation of the first housing (210), the second housing (220), and the third housing (230), and can help improve portability because the three housings (210, 220, 230) are deformed in a manner that they overlap each other in a folded state. In addition, the plurality of electronic components can help improve usability by being arranged in appropriate positions that are advantageous for use in the unfolded state and / or the folded state of the multi-foldable electronic device (200).
[0107] FIGS. 4A to 4C are diagrams illustrating the operating states of a multi-foldable electronic device according to various embodiments of the present disclosure. FIG. 4D is a cross-sectional view of the multi-foldable electronic device taken along line 4d-4d of FIG. 4C according to various embodiments of the present disclosure.
[0108] Referring to FIGS. 4A to 4D, the multi-foldable electronic device (200) may include a first housing (210), a second housing (220) rotatably connected to the first housing (210) in a direction (e.g., the x-axis direction) of one side (e.g., the right side) of the first housing (210) via a first hinge assembly (HA1) with respect to a first folding axis (F1), and a third housing (230) rotatably connected to the first housing (210) in a direction (e.g., the -x-axis direction) of the other side (e.g., the left side) of the first housing (210) via a second hinge assembly (HA2) with respect to a second folding axis (F2). In one embodiment, the multi-foldable electronic device (200) may include a flexible display (240) arranged to be supported by at least a portion of the first, second, and third housings (210, 220, 230). In one embodiment, the multi-foldable electronic device (200) may include a sub-display (250) arranged in the third housing (230).
[0109] According to various embodiments, in a multi-foldable electronic device (200), in a fully unfolded state (e.g., the state of FIG. 4a), the first side (211) of the first housing (210), the third side (221) of the second housing (220), and the fifth side (231) of the third housing (230) face in the same direction (e.g., the z-axis direction of FIG. 4a), and the entire area of the flexible display (240) can be used.
[0110] According to various embodiments, the multi-foldable electronic device (200) may be configured such that, in an intermediate state (e.g., the state of FIG. 4b), the first housing (210) and the second housing (220) are folded in an in-folding manner, such that the first surface (211) of the first housing (210) and the third surface (221) of the second housing (220) face each other. In this case, the flexible display (240) may be exposed so that only an area corresponding to the third housing (230) is visible from the outside.
[0111] According to various embodiments, when the multi-foldable electronic device (200) transitions from an intermediate state to a fully folded state (e.g., the states of FIGS. 4c and 4d), the third housing (230) may be folded in an infolding manner so as to at least partially overlap the second housing (220), such that the fourth side (222) of the second housing (220) may face the fifth side (231) of the third housing (230). In this case, the flexible display (240) may be disposed between the first housing (210) and the second housing (220) and between the second housing (220) and the third housing (230), such that it may not be visible from the outside. In one embodiment, the multi-foldable electronic device (200) may help improve portability by having the first housing (210), the second housing (220), and the third housing (230) sequentially stacked in a folded state.
[0112] According to various embodiments, the multi-foldable electronic device (200) may be arranged so that the second side (212) of the first housing (210) and the sixth side (232) of the third housing (230) are visible from the outside when in a folded state. Accordingly, the second camera (273b) and / or the second sensor (e.g., the second sensor (274b) of FIG. 2c) may be arranged through the second side (212) of the first housing (210) so that they can be used even in a folded state, and the sub-display (250) may also be arranged so that they are visible from the outside through the sixth side (232) of the third housing (230).
[0113] FIGS. 5A to 5E are exemplary diagrams showing various usage states of a multi-foldable electronic device according to various embodiments of the present disclosure.
[0114] The multi-foldable electronic device (200) according to exemplary embodiments of the present disclosure can be transformed in various ways and provide a rich user experience by maintaining a state in which the housings (210, 220, 230) are rotated at a specified angle with respect to each other through the first and second hinge assemblies (HA1, HA2) in addition to the unfolded state, the folded state, and / or the intermediate state (free stop function).
[0115] Referring to FIG. 5A, the multi-foldable electronic device (200) can be maintained in a state in which the third housing (230) is rotated at a specified angle (θ1) with respect to the first housing (210) from the unfolded state. In this case, the multi-foldable electronic device (200) can be used in a state in which the first housing (210) and the second housing (220) are mounted on a mounting surface (T).
[0116] Referring to FIG. 5b, the multi-foldable electronic device (200) can be maintained in a state in which the second housing (220) is rotated at a specified angle (θ1) with respect to the first housing (210) from the unfolded state. In this case, the multi-foldable electronic device (200) can be used in a state in which the first housing (210) is placed on the mounting surface (T).
[0117] Referring to FIG. 5C, the multi-foldable electronic device (200) can be maintained in a state in which the second housing (220) is rotated at a specified angle with respect to the first housing (210) from an unfolded state, and the third housing (230) is rotated at a specified angle with respect to the first housing (210). In one embodiment, the multi-foldable electronic device (200) can be used in a state in which one side of the second housing (220) (e.g., the fourth side (2232) of FIG. 2A) and one side of the third housing (230) (e.g., the seventh side (2332) of FIG. 2A) come into contact with each other, thereby being deformed into a triangular shape, and the second housing (220) is placed on the placement surface (T). In this case, an externally exposed sub-display (250) can be used. In some embodiments, the third housing (230) may be rotated such that one side contacts at least a portion of the flexible display (240) corresponding to the second housing (220).
[0118] Referring to FIG. 5d, the multi-foldable electronic device (200) may be connected to an external electronic device (200-1) in the use state of FIG. 5c. In this case, the external electronic device (200-1) may include a key button device and / or a keypad device used as a data input means. In one embodiment, the external electronic device (200-1) may be operatively connected to the multi-foldable electronic device (200) via wireless communication (e.g., Bluetooth communication).
[0119] Referring to FIG. 5E, the multi-foldable electronic device (200) can be maintained in a state in which the second housing (220) is rotated at a specified angle with respect to the first housing (210) from an unfolded state, and the third housing (230) is rotated at a specified angle with respect to the first housing (210). In one embodiment, the multi-foldable electronic device (200) can be used in a manner in which, in a deformed state, one side of the first housing (210) (e.g., the first side (2131) of FIG. 2A), one side of the second housing (220) (e.g., the third side (2231) of FIG. 2A), and one side of the third housing (230) (e.g., the sixth side (2331) of FIG. 2A)) are mounted on a mounting surface (T). Although not shown, in this case as well, the multi-foldable electronic device (200) can be operatively connected to an external electronic device (e.g., the external electronic device (200-1) of FIG. 5d) to help improve usability. Although not shown, the multi-foldable electronic device (200) can be used with the first housing (210) and the second housing (220) completely folded and the third housing (230) maintained in a partially folded state (e.g., θ1 is about 90 to 135 degrees) with respect to the first housing (210). In this case, the multi-foldable electronic device (200) may include a sub-display arranged to be visible from the outside through the second rear cover (224) of the second housing (220), and content may be displayed in a display area corresponding to the third housing (230), and a user interface for controlling the content (e.g., at least one object such as a play button) may be provided in the display area of the sub-display.
[0120] FIGS. 6A to 6E are exploded perspective views of a multi-foldable electronic device viewed from the rear according to various embodiments of the present disclosure. FIGS. 6B to 6E are enlarged views of regions of the exploded perspective view of the multi-foldable electronic device of FIG. 6A. FIG. 6F is an exploded perspective view of a multi-foldable electronic device viewed from the front according to various embodiments of the present disclosure.
[0121] Referring to FIGS. 6A to 6F, the multi-foldable electronic device (200) may include a first side member (213), a second side member (223) rotatably coupled to one side of the first side member (213) via a first hinge assembly (HA1), and a third side member (233) rotatably coupled to the other side of the first side member (213) via a second hinge assembly (HA2). In one embodiment, the multi-foldable electronic device (200) may include a first housing (210) configured to include a first space (2101) through a first rear cover (214) coupled with a first side member (213) (e.g., the first housing (210) of FIG. 6f), a second housing (220) configured to include a second space (2201) through a second rear cover (224) coupled with a second side member (223) (e.g., the second housing (220) of FIG. 6f), and a third housing (230) configured to include a third space (2301) through a third rear cover (234) coupled with a third side member (233) (e.g., the third housing (230) of FIG. 6f). In one embodiment, the first side member (213) may include a first support member (213a) extending into or structurally coupled to at least a portion of the first space (2101). In one embodiment, the second side member (223) may include a second support member (223a) extending into or structurally coupled to at least a portion of the second space (2201). In one embodiment, the third side member (233) may include a third support member (233a) extending into or structurally coupled to at least a portion of the third space (2301). In one embodiment, at least some of the first, second, and third support members (213a, 223a, 233a) may be used as a support structure for supporting at least a portion of the flexible display (240). In one embodiment, at least some of the first, second, and third support members (213a, 223a, 233a) may be used as support structures for supporting at least some of a plurality of electronic components to be described later.
[0122] According to various embodiments, the multi-foldable electronic device (200) may include a flexible display (240) arranged to be supported by a first side member (213), a first hinge assembly (HA1), a second side member (223), a second hinge assembly (HA2), and a third side member (233). In one embodiment, an edge of the flexible display (240) may be at least partially covered so as not to be visible from the outside by first, second, third, and fourth protective frames (261, 262, 263, 264) and first, second, third, and fourth protective members (265a, 265b, 265c, 265d) arranged on the first, second, and third side members (213, 223, 233). In one embodiment, the multi-foldable electronic device (200) may include a sub-display (250) arranged to be visible from the outside through at least a portion of the third rear cover (234) in the third space (2301).
[0123] According to various embodiments, the multi-foldable electronic device (200) may include a plurality of electronic components arranged in first, second, and third housings (210, 220, 230). In one embodiment, the plurality of electronic components comprises at least one substrate (281, 281a, 282, 282a, 283, 283a) (e.g., a printed circuit board (PCB)), at least one connecting substrate (281b, 282b, 283b) (e.g., a flexible printed circuit board (FPCB)), at least one wiring member (284a, 284b), at least one battery (B1, B2, B3), at least one speaker (272a, 272b, 272c, 272d), at least one camera (273a, 273b, 273c), at least one magnet (M1, M2, M3, M4, M5, M6, M7, M8), at least one key button (275), at least one socket device (277), at least one vibration motor (285), at least one waterproof member (WP1, WP2, WP3) and at least one antenna structure (AR1, AR2).
[0124] According to various embodiments, at least one substrate (281, 282, 283) may include a first substrate (281) (e.g., a first printed circuit board) disposed in a first space (2101) of a first housing (210), a second substrate (282) (e.g., a second printed circuit board) disposed in a second space (2201) of a second housing (220), and a third substrate (283) (e.g., a third printed circuit board) disposed in a third space (2301) of a third housing (230). In one embodiment, at least one substrate (281a, 282a, 283a) may include a first sub-substrate (281a) (e.g., a first sub-printed circuit board) disposed at a position spaced apart from a first substrate (281) in a first space (2101), a second sub-substrate (282a) (e.g., a second sub-printed circuit board) disposed at a position spaced apart from a second substrate (282) in a second space (2201), and a third sub-substrate (283a) (e.g., a third sub-printed circuit board) disposed at a position spaced apart from a third substrate (283) in a third space (2301). In one embodiment, the first substrate (281) and the first sub-substrate (281a) may be arranged to be supported by a first support bracket (279a) and a second support bracket (279b) arranged in the first space (2101). In some embodiments, the second substrate (282) and the second sub-substrate (282a) arranged in the second space (2201), and the third substrate (283) and the third sub-substrate (283a) arranged in the third space (2301) may also be arranged to be supported by at least one support bracket.
[0125] According to various embodiments, at least one connecting substrate (281a, 282b, 283b) may include a first connecting substrate (281b) electrically connecting a first substrate (281) and a first sub-substrate (281a) in a first space (2101), a second connecting substrate (282b) electrically connecting a second substrate (282) and a second sub-substrate (282a) in a second space (2201), and a third connecting substrate (283b) electrically connecting a third substrate (283) and a third sub-substrate (283a) in a third space (2301). In one embodiment, at least one of the first, second, and third connecting substrates (281b, 282b, 283b) may include a flexible printed circuit board (FPCB) and / or a flexible RF cable (FRC).
[0126] According to various embodiments, at least one wiring member (284a, 284b) may include a first wiring member (284a) extending from a first space (2101) across a first hinge assembly (HA1) to a second space (2201) and a second wiring member (284b) extending from the first space (2101) across a second hinge assembly (HA2) to a third space (2301). In one embodiment, the first and second wiring members (284a, 284b) may include a flexible printed circuit board (FPCB) having a shape having an elastic restoring force capable of accommodating a folding motion of each of the housings (210, 220, 230). In one embodiment, the first substrate (281) and the second substrate (282) may be electrically connected via the first wiring member (284a). In one embodiment, the first substrate (281) and the third substrate (283) can be electrically connected through a second wiring member (284b).
[0127] According to various embodiments, at least one battery (B1, B2, B3) may include a first battery (B1) disposed in a first space (2101), a second battery (B2) disposed in a second space (2201), and a third battery (B3) disposed in a third space (2301). In one embodiment, the first battery (B1) may be electrically connected to the first substrate (281) and / or the first sub-substrate (281a). In one embodiment, the second battery (B2) may be electrically connected to the second substrate (282) and / or the second sub-substrate (282a). In one embodiment, the third battery (B3) may be electrically connected to the third substrate (283) and / or the third sub-substrate (283a). Accordingly, the first, second, and third batteries (B1, B2, and B3) can provide power to the first, second, and third substrates (281, 282, and 283) and / or the first, second, and third sub-substrates (281a, 282a, and 283a) that are electrically connected through the first and second wiring members (284a, 284b). In one embodiment, the first battery (B1) can be disposed between the first substrate (281) and the first sub-substrate (281a). In one embodiment, the second battery (B2) can be disposed between the second substrate (282) and the second sub-substrate (282a). In one embodiment, the third battery (B3) can be disposed between the third substrate (283) and the third sub-substrate (283a).
[0128] According to various embodiments, at least one speaker (272a, 272b, 272c, 272d) may include a first speaker (272a) electrically connected to a first sub-board (281a) in a first space (2101), a second speaker (272b) electrically connected to a first board (281) in a first space (2101), a third speaker (272c) electrically connected to a third sub-board (283a) in a third space (2301), and a fourth speaker (272d) electrically connected to a third board (283) in a third space (2301).
[0129] According to various embodiments, at least one camera (273a, 273b, 273c) may include a first camera (273a) electrically connected to a third substrate (283) in a third space (2301) of a third housing (230), a second camera (273b) electrically connected to a first substrate (281) in a first space (2101) of the first housing (210), and a third camera (273c) electrically connected to a third substrate (283) in a third space (2301) of the third housing (230). In one embodiment, the first camera (273a) may be positioned to capture a subject in a direction in which the flexible display (240) faces (e.g., the z-axis direction in FIG. 6c), and the third camera (273c) may be positioned to capture a subject in a direction in which the third rear cover (234) faces (e.g., the -z-axis direction in FIG. 6c).
[0130] According to various embodiments, at least one magnet (M1, M2, M3, M4, M5, M6, M7, M8) may include first and second magnets (M1, M2) arranged in a first space (2101) of a first housing (210), third, fourth, fifth, sixth magnets (M3, M4, M5, M6) arranged in a second space (2201) of a second housing (220), and seventh, eighth magnets (M7, M8) arranged in a third space (2301) of a third housing (230). In one embodiment, the first and second magnets (M1, M2) may be arranged to be aligned with the fifth and sixth magnets (M5, M6), respectively, in a folded state. In one embodiment, the third and fourth magnets (M3, M4) may be arranged to align with the seventh and eighth magnets (M7, M8), respectively, in the folded state. In one embodiment, the first and second magnets (M1, M2) and the fifth and sixth magnets (M5, M6) may be arranged to generate an attractive force toward each other, respectively, in the folded state. In one embodiment, the third and fourth magnets (M3, M4) and the seventh and eighth magnets (M7, M8) may be arranged to generate an attractive force toward each other, respectively, in the folded state. In one embodiment, any one of the first to eighth magnets (M1, M2, M3, M4, M5, M6, M7, M8) may be replaced with an electromagnet that is set to have a polarity when energized. In some embodiments, the first, second, fifth, and sixth magnets (M1, M2, M5, M6) may be omitted.
[0131] According to various embodiments, at least one key button (275) may be arranged to be exposed through one side of the third side member (233) (e.g., the seventh side (2332) of FIG. 2a) in the third space (2301) of the third housing (230). In one embodiment, at least one socket device (277) may also be arranged through one side of the third side member (233) (e.g., the seventh side (2332) of FIG. 2a) in the third space (2301) of the third housing (230). In one embodiment, at least one vibration motor (285) may be arranged to be electrically connected to the first sub-board (281a) in the first space (2101). In some embodiments, at least one vibration motor (285) may be arranged in the second space (2201) and / or the third space (2301).
[0132] According to various embodiments, at least one waterproof member (WP1, WP2, WP3) may include a first waterproof member (WP1) disposed between the first side member (213) and the flexible display (240), a second waterproof member (WP2) disposed between the second side member (223) and the flexible display (240), and a third waterproof member (WP3) disposed between the third side member (233) and the flexible display (240). In one embodiment, the first, second, and third waterproof members (WP1, WP2, WP3) may provide a waterproof space to protect electronic components disposed through the first, second, and third support members (213a, 223a, 233a) from external moisture and / or foreign substances. In one embodiment, the first, second, and third waterproofing members (WP1, WP2, and WP3) may include at least one of tape, adhesive, waterproof dispensing, silicone, waterproof rubber, and urethane.
[0133] According to various embodiments, at least one antenna structure (AR1, AR2) may include a first antenna structure (AR1) and a second antenna structure (AR2) disposed in a first space (2101) of a first housing (210). In one embodiment, the first antenna structure (AR1) and the second antenna structure (AR2) may include an array antenna including a substrate, a plurality of antenna elements (e.g., conductive patches) disposed at a specified interval on the substrate, and wireless communication circuitry (e.g., a wireless communication module (192) of FIG. 1) disposed on the substrate and electrically connected to the plurality of antenna elements. In one embodiment, the wireless communication circuitry (e.g., a wireless communication module (292) of FIG. 1) may be configured to transmit or receive a wireless signal in a frequency band ranging from about 3 GHz to about 300 GHz via the plurality of antenna elements. In one embodiment, the first antenna structure (AR1) and the second antenna structure (AR2) can form a directional beam pattern. In some embodiments, a wireless communication circuit (e.g., a wireless communication module (292) of FIG. 1) may be disposed on the first substrate (281). In one embodiment, the first antenna structure (AR1) may be disposed in the first space (2101) such that the beam pattern is formed in a direction (e.g., the y-axis direction of FIG. 6C) toward the upper side surface (e.g., the second side surface (2132) of FIG. 2A) of the first housing (210). In one embodiment, the second antenna structure (AR2) may be disposed in the first space (2101) such that the beam pattern is formed in a direction (e.g., the -z-axis direction of FIG. 6C) toward the first rear cover (214) of the first housing (210).
[0134] According to various embodiments, the flexible display (240) may include a bending portion (432) that extends outwardly from a display panel (e.g., the display panel (430) of FIG. 9D) (e.g., the display panel portion) and is arranged in a foldable manner on the back surface of the flexible display (240). In one embodiment, the bending portion (432) may include an extension portion (4321) (e.g., the extension panel portion) that extends from the display panel (430) and includes a control circuit (4321a) (e.g., a display driver integrated circuit (DDI)) and a flexible substrate (4322) (e.g., an FPCB) that is electrically connected to the extension portion (4321) and includes a plurality of electrical elements. For example, the flexible display (240) may be formed such that the display panel (430) and the bending portion (432) are formed in a COP (chip on plastic) manner. For example, the extension portion (4321) (e.g., the extension panel portion) may include polyimide (PI) included in the substrate of the display panel (430). In one embodiment, the flexible substrate (4322) may include a connector (4322a) for electrically connecting with the second substrate (282) disposed in the second space (2201). In one embodiment, the bending portion (432) may be disposed to extend between the display panel (430) and the second support member (223a) in an area corresponding to one side of the second housing (220) from the flexible display (240) (e.g., the fourth side (2232) of FIG. 2A).
[0135] Electronic components according to exemplary embodiments of the present disclosure may be appropriately arranged in the first space (2101) of the first housing (210), the second space (2201) of the second housing (220), and / or the third space (2301) of the third housing (230), thereby enabling smooth operational connection and helping to slim down the multi-foldable electronic device (200).
[0136] FIG. 7A is a plan view of a multi-foldable electronic device in an unfolded state, with the flexible display omitted, as viewed from the front, according to various embodiments of the present disclosure. FIG. 7B is a rear view of a multi-foldable electronic device in an unfolded state, with the rear covers omitted, as viewed from the rear, according to various embodiments of the present disclosure.
[0137] FIG. 7C is a schematic diagram of an electronic device with the housing omitted from the drawing of FIG. 7A according to various embodiments of the present disclosure. FIG. 7D is a schematic diagram of an electronic device with the housing omitted from the drawing of FIG. 7B according to various embodiments of the present disclosure.
[0138] In describing FIGS. 7A to 7D, components that are substantially the same as the components of the electronic device described above are given the same symbols, and a detailed description thereof may be omitted.
[0139] Referring to FIGS. 7A to 7D, a multi-foldable electronic device (200) may include a first housing (210) including a first side member (213), a second housing (220) including a second side member (223) rotatably coupled to one side of the first housing (210) via a first hinge assembly (HA1), and a third housing (230) including a third side member (233) rotatably coupled to the other side of the first housing (210) via a second hinge assembly (HA2). In one embodiment, the multi-foldable electronic device (200) may include a first battery (B1) disposed in a first space (2101) of a first housing (210), and a first substrate (281) and a first sub-substrate (281a) connected through a first connection substrate (281b) with the first battery (B1) interposed therebetween. In one embodiment, the multi-foldable electronic device (200) may include a second battery (B2) disposed in a second space (2201) of a second housing (220), and a second substrate (282) and a second sub-substrate (282a) connected through a second connection substrate (282b) with the second battery (B2) interposed therebetween. In one embodiment, the multi-foldable electronic device (200) may include a third battery (B3) disposed in a third space (2301) of a third housing (230), and a third substrate (283) and a third sub-substrate (283a) connected through a third connecting substrate (283b) with the third battery (B3) interposed therebetween.
[0140] According to various embodiments, the sizes of the first battery (B1), the second battery (B2), and the third battery (B3) may be determined by the number and / or arrangement structure of electronic components arranged in the first space (2101), the second space (2201), and the third space (2301). For example, the first battery (B1) may be set to the smallest size due to the arrangement structure of major components such as the first substrate (281), the first sub-substrate (281a), the second camera (273b), the antenna structure (AR1, AR2), or the connector port (276) including the processor (e.g., the processor (120) of FIG. 1) arranged in the first space (2101). In one embodiment, the second battery (B2) may be set to the largest size due to the arrangement structure of electronic components such as speakers (272a, 272b), the second substrate (282), or the second sub-substrate (282a). In one embodiment, the third battery (B3) may be set to a size larger than the first battery (B1) and smaller than the second battery (B2) due to the arrangement structure of electronic components such as speakers (272c, 272d), the third substrate (283), the third sub-substrate (283a), the key button (275), or the connector port (276). However, the present invention is not limited thereto, and the sizes of each of the first, second, and third batteries (B1, B2, B3) may be modified to various sizes by the arrangement design of the electronic components arranged in the first, second, and third spaces (2101, 2201, 2031).
[0141] According to various embodiments, the first camera (273a) may be advantageously disposed at a location (e.g., upper left) close to the corner where the seventh side (2332) and the eighth side (2333) meet in the third space (2301) of the third housing (230) when the multi-foldable electronic device (200) is in an unfolded state. For example, the arrangement structure of the first camera (273a) disposed at the corner of the third housing (230) may provide an advantageous advantage in that the first camera (273a) may not be usable in a folded state or an intermediate state when disposed in the first housing (210) and / or the second housing (220), but may be usable even in an intermediate state where only the first housing (210) and the second housing (220) are folded. In some embodiments, the first camera (273a) may be positioned at various locations along or near the seventh side (2332) of the third housing (230), although the user's grip on the multi-foldable electronic device may be considered. In some embodiments, the first camera (273a) may be positioned at various locations along or near the eighth side (2333) or the sixth side (2331) of the third housing (230).
[0142] According to various embodiments, it may be advantageous for the key button (275) and / or the socket device (277) to be positioned so as to be exposed through the seventh side (2332) in the third space (2301) of the third housing (230). For example, the key button (275) and / or the socket device (277) may be positioned so as to be exposed to the outside on the right side of the multi-foldable electronic device (200) when the multi-foldable electronic device (200) is in a folded state and the sub-display (250) is in an upwardly facing state (e.g., the state of FIG. 3A), thereby helping to improve usability.
[0143] According to various embodiments, at least a portion of the third and fourth magnets (M3, M4) may be disposed between the second support member (223a) and the hinge module (e.g., the first hinge assembly (HA1)). In another embodiment, the third and fourth magnets (M3, M4) may be disposed over a portion of the hinge module (e.g., the first hinge assembly (HA1)) and a portion of the second support member (223a). In this case, a portion of the hinge module (e.g., the first hinge assembly (HA1)) corresponding to the third and fourth magnets (M3, M4) and / or a portion of the second support member (223a) may include recesses, and at least a portion of the third and fourth magnets (M3, M4) may be disposed within the recesses. In another embodiment, a majority of the hinge module (e.g., the first hinge assembly (HA1)) may be arranged to overlap the first support member (213a) and the second support member (223a) when the electronic device (200) is fully unfolded and viewed from the rear. In this case, the third and fourth magnets (M3, M4) may be arranged within a recess included in a portion of the hinge module (e.g., the first hinge assembly (HA1)) or a hole penetrating the hinge module. In one embodiment, the third and fourth magnets (M3, M4) may be attached to the second support member (223a).
[0144] According to various embodiments, the seventh and eighth magnets (M7, M8) may be disposed on a portion of the third support member (233a) or within holes penetrating a portion of the third support member (233a). In one embodiment, when the seventh and eighth magnets (M7, M8) are disposed on a portion of the third support member (233a), they may be disposed within recesses of a shape corresponding to the seventh and eighth magnets (M7, M8) within a portion of the third support member (233a). According to one embodiment, the seventh and eighth magnets (M7, M8) may be fixed to the third support member (233a).
[0145] FIG. 8 is a drawing illustrating an electrical connection structure between substrates in a multi-foldable electronic device according to various embodiments of the present disclosure.
[0146] Referring to FIG. 8, the multi-foldable electronic device (200) may include a first substrate (281) disposed in a first space (2101) of a first housing (210), a second substrate (282) disposed in a second space (2201) of a second housing (220), and a third substrate (283) disposed in a third space (2301) of a third housing (230). In one embodiment, the multi-foldable electronic device (200) may include a first sub-substrate (281a) disposed at a position spaced apart from the first substrate (281), a second sub-substrate (282a) disposed at a position spaced apart from the second substrate (282), and a third sub-substrate (283a) disposed at a position spaced apart from the third substrate (283) in the third space (2301). In one embodiment, the multi-foldable electronic device (200) may include a first connection substrate (281b) connecting a first substrate (281) and a first sub-substrate (281a), a second connection substrate (282b) electrically connecting a second substrate (282) and a second sub-substrate (282a), and a third connection substrate (283b) electrically connecting a third substrate (283) and a third sub-substrate (283a). In one embodiment, a connecting member (e.g., a third connecting board (283b)) electrically connecting the third substrate (283) and the third sub-board (283a) may be replaced with or used in parallel with a flexible linear connecting member such as a cable or wire other than the board, and the linear connecting member may pass between the seventh magnet (M7) and the third battery (B3) and / or between the eighth magnet (M8) and the third battery (B3). In another embodiment, the connecting member (e.g., the third connecting board (283b)) may pass between the seventh magnet (M7) and the seventh side (2332) of the third housing (230) and / or between the eighth magnet (M8) and the seventh side (2332) of the third housing (230).In one embodiment, the multi-foldable electronic device (200) may include a first wiring member (284a) extending from a first space (2101) of a first housing (210) across a first hinge assembly (HA1) to a second space (2201) of a second housing (220), and a second wiring member (284b) extending from the first space (2101) of the first housing (210) across a second hinge assembly (HA2) to a third space (2301) of a third housing (230).
[0147] According to various embodiments, the multi-foldable electronic device (200) may be configured such that, even if it is composed of three housings (210, 220, 230) that are rotatable relative to each other through hinge assemblies (HA1, HA2), the first, second, and third substrates (281, 282, 283) arranged in each housing are electrically connected to the first, second, and third sub-substrates (281a, 282a, 283a) through the first, second, and third connecting substrates (281b, 282b, 283b). In addition, the multi-foldable electronic device (200) is configured to operate as a single, unified device because the first, second, and third substrates (281, 282, 283) are electrically connected to each other through the first and second wiring members (284a, 284b), and the electronic components arranged in each housing (210, 220, 230) also have a configuration in which they are operatively connected, thereby helping to improve usability.
[0148] FIG. 9A is a plan view of a multi-foldable electronic device in an unfolded state, schematically illustrating the arrangement of an extended panel portion of a flexible display according to various embodiments of the present disclosure. FIG. 9B is a perspective view of a flexible display according to various embodiments of the present disclosure.
[0149] Referring to FIGS. 9A and 9B , the flexible display (240) may include a bending portion (432) that extends outwardly from the display panel (430) and is arranged in a foldable manner on the back surface of the flexible display (240). In one embodiment, the bending portion (432) may include an extension portion (4321) (e.g., an extension panel portion) that extends from the display panel (430) and includes a control circuit (4321a) (e.g., a display driving circuit) and a flexible substrate (4322) (e.g., an FPCB) that is electrically connected to the extension portion (4321) and includes a plurality of electrical elements. In one embodiment, the flexible substrate (4322) may include a connector (4322a) for electrically connecting to a second substrate (282) arranged in the second space (2201).
[0150] According to various embodiments, the bending portion (432) of the flexible display (240) may advantageously be positioned near the fourth side (2232) of the second housing (220) (e.g., the right side of the multi-foldable electronic device (200) in the unfolded state of FIG. 9A). For example, the bending portion (432) must be formed to have a length substantially similar to the length of one side of the flexible display (240) due to the wiring structure. In the unfolded state of FIG. 9a, the upper side (e.g., the second side (2132), the fifth side (2233), and the eighth side (2333)) and the lower side (e.g., the first side (2131), the third side (2231), and the sixth side (2331)) of the multi-foldable electronic device (200) may be difficult to place due to the possibility of damage to the wiring structure and / or the control circuit (4321a) due to frequent folding operations. In addition, in the unfolded state of FIG. 9A, the bending portion (432) may be difficult to place at the left side (e.g., the seventh side (2332)) of the multi-foldable device (200) due to the preferential placement structure of other electronic components (e.g., key button (275) and / or socket device (277)) that must be placed there.
[0151] FIG. 9C is a cross-sectional view of an electronic device taken along line 9C-9C of FIG. 9A according to various embodiments of the present disclosure. FIG. 9D is an enlarged view of a region 9D of FIG. 9C according to various embodiments of the present disclosure.
[0152] Referring to FIGS. 9C and 9D , the flexible display (240) may include a window layer (410), a polarizing layer (POL) (420) (e.g., a polarizing film) sequentially disposed on the back surface (e.g., in the -z-axis direction) of the window layer (410), a display panel (430), a polymer layer (440), a support plate (450), and at least one lower layer (460). In one embodiment, the window layer (410), the polarizing layer (420), the display panel (430), the polymer layer (440), the support plate (450), and at least one lower layer (460) may be attached to each other via an adhesive (P) (or glue). For example, the adhesive (P) may include at least one of an optical clear adhesive (OCA), a pressure sensitive adhesive (PSA), a heat-reactive adhesive, a general adhesive, or a double-sided tape.
[0153] According to various embodiments, the window layer (410) may include a glass layer (e.g., ultra thin glass (UTG) or foldable thin glass (FTG)) or a polymer layer. In some embodiments, the window layer (410) may be arranged in multiple layers to include a glass layer and a polymer layer.
[0154] According to various embodiments, the display panel (430) may include a plurality of pixels and a wiring structure (e.g., an electrode pattern). In one embodiment, the polarizing layer (420) may be arranged to selectively pass light generated from a light source of the display panel (430) and vibrating in a certain direction. In one embodiment, the display panel (430) and the polarizing layer (420) may be formed integrally. In one embodiment, the flexible display (240) may also include a touch panel (not shown).
[0155] According to various embodiments, the polymer layer (440) may be disposed under the display panel (430) to provide a dark background for ensuring visibility of the display panel (430) and may be formed as a buffer material for buffering. In some embodiments, to ensure waterproofing of the flexible display (240), the polymer layer (440) may be removed or disposed under the support plate (450). In some embodiments, the polymer layer (440) may be omitted when the support plate (450) is formed of an opaque material.
[0156] According to various embodiments, the support plate (450) can provide rigidity and bending properties to the flexible display (240). For example, the support plate (450) can be formed of a non-metallic thin-plate material or a metallic material, such as fiber reinforced plastics (FRP) (e.g., carbon fiber reinforced plastics (CFRP) or glass fiber reinforced plastics (GFRP)) having rigid properties for supporting the display panel (430). In one embodiment, the support plate (450) can include a pattern (e.g., a plurality of openings and / or recesses) that can help improve bending properties by being formed in an area corresponding to the folding areas (e.g., the fourth area (240d) and / or the fifth area (240e) of FIG. 2B) of the flexible display (240).
[0157] According to various embodiments, at least one lower layer (460) may include at least one reinforcing plate positioned below the support plate (450) to improve the surface quality and provide rigidity to the flexible display (240) and / or at least one digitizer positioned for use with an electronic pen.
[0158] According to various embodiments, the flexible display (240) may include a bending portion (432) extending outwardly from the display panel (430) and arranged in a manner of being folded toward a back surface (e.g., at least one lower layer (460)) of the flexible display (240). In one embodiment, the flexible display (240) may further include a bending portion protection layer (4324) (e.g., a bending protection layer (BPL)) laminated on an outer surface of the bending portion (432) to protect at least a portion of the bending portion (432). In one embodiment, the bending portion (432) may include an extension portion (4321) extending from the display panel (430) and including a control circuit (4321a), and a flexible substrate (4322) connected to the extension portion (4321) and including a plurality of electrical elements. In one embodiment, the bending portion (432) may be bent to the back surface of the flexible display (240) and then attached to the lower layer (460). In one embodiment, the extension portion (4321) may be attached to the lower layer (460) on the back surface of the flexible display (240) via a first adhesive member (T1). According to one embodiment, the flexible substrate (4322) may be attached to the lower layer (460) via a second adhesive member (T2). For example, the first adhesive member (T1) may be a tape member having a specified thickness, and may serve as a spacer having a thickness for maintaining the bent state of the extension portion (4321) and compensating for a height difference between the extension portion (4321) and the flexible substrate (4322). In one embodiment, the first adhesive member (T1) and / or the second adhesive member (T2) may be formed of a waterproof member (e.g., waterproof tape) since they are at least partially exposed to the outside. In one embodiment, the second adhesive member (T2) may include a conductive tape for electrically connecting the ground of the flexible substrate (4322) to the lower layer (460).
[0159] According to various embodiments, the control circuit (4321a) disposed on the extension portion (4321) may be protected by a cover member (4325) attached so as to cover at least a portion of the flexible substrate (4322) to at least a portion of the extension portion (4321). In one embodiment, the control circuit (4321a) may be sealed by being disposed between the cover member (4325) and the extension portion (4321) and the flexible substrate (4322). In one embodiment, the third adhesive member (T3) may be formed of a waterproof member (e.g., a waterproof tape). In one embodiment, the third adhesive member (T3) may be disposed between the bending portion protection layer (4324) and the control circuit (4321a). In one embodiment, at least a portion of the cover member (4325) may be formed of a material having a waterproof structure because it comes into direct contact with external moisture and / or foreign substances. In one embodiment, at least a portion of the cover member (4325) may be attached to at least a portion of the second support member (223a) via the second waterproof member (WP2).
[0160] FIG. 10A is a rear view of a multi-foldable electronic device in an unfolded state, schematically illustrating the arrangement of the extended panel portion of the sub-display according to various embodiments of the present disclosure. FIG. 10B is a configuration diagram of a sub-display according to various embodiments of the present disclosure. FIG. 10C is a diagram comparing the arrangement of the sub-displays according to their housings according to various embodiments of the present disclosure.
[0161] Referring to FIGS. 10A and 10B , the multi-foldable electronic device (200) may include a sub-display (250) that is arranged to be visible from the outside through a third rear cover (234) arranged on a sixth surface (232) of a third housing (230). In one embodiment, the sub-display (250) may also be bent from a display panel (430') (e.g., a display panel portion) to a rear surface of the sub-display (250), and may include an extension portion (4351) (e.g., an extension panel portion) that includes a control circuit (4351a) (e.g., a display driving circuit), and a bending portion (435) that includes a flexible substrate (4352) (e.g., an FPCB) electrically connected to the extension portion (4351). In one embodiment, the flexible substrate (4352) may be electrically connected to a third substrate (e.g., the third substrate (283) of FIG. 8) via a fourth connecting substrate (283c).
[0162] According to various embodiments, it may be advantageous for the bending portion (435) of the sub-display (250) to be arranged near the sixth side (2331) of the third housing (230). For example, the bending portion (435) may be difficult to arrange at the corresponding location due to the preferential arrangement structure of other electronic components (e.g., key buttons (275) and / or socket devices (277)) that must be arranged on the seventh side (2332) of the third housing (230) and the preferential arrangement structure of the third camera (273c) and / or the third sensor (274c) on the eighth side (2333).
[0163] Referring to FIG. 10c, the sub-display (250) can be arranged through the sixth side (232) of the third housing (230) that is exposed to the outside when the multi-foldable electronic device (200) is in a folded state. For example, the second side (212) of the first housing (210) can also be exposed to the outside when in a folded state. However, the sub-display (250) may be advantageously arranged in the third housing (230) because the first arrangement width (DW1) for arranging the sub-display (250) allowed by the first hinge assembly (HA1) and the second hinge assembly (HA2) arranged on both sides of the first housing (210) is smaller than the second arrangement width (DW2) for arranging the sub-display (250) allowed by the second hinge assembly (HA2) arranged on one side of the third housing (230).
[0164] FIG. 11 is a plan view of a multi-foldable electronic device in an unfolded state, illustrating a speaker arrangement structure according to various embodiments of the present disclosure.
[0165] Referring to FIG. 11, the multi-foldable electronic device may include a first speaker (272a) arranged to emit sound through a third side (2231) of the second housing (220), a second speaker (272b) arranged to emit sound through a fifth side (2233), a third speaker (272c) arranged to emit sound through a sixth side (2331) of the third housing (230), and a fourth speaker (272d) arranged to emit sound through an eighth side (2333). In one embodiment, the first to fourth speakers (272a, 272b, 272c, 272d) may be symmetrically arranged to implement stereophonic sound (e.g., three-dimensional sound) at positions that can always be exposed to the outside, even when the multi-foldable electronic device (200) is in an unfolded or folded state. In some embodiments, the first speaker (272a) and the second speaker (272b) may be omitted. In some embodiments, the third speaker (272c) and the fourth speaker (272d) may be omitted.
[0166] FIG. 12 is a schematic diagram of a multi-foldable electronic device illustrating an antenna arrangement structure according to various embodiments of the present disclosure.
[0167] Referring to FIG. 12, the multi-foldable electronic device (200) may include at least one antenna (A1, A2, A3, A4, A5, A6, A7, A8, A9, A10, A11, A12) that operates through at least a portion of the conductive side members (213, 223, 233) included in the first, second, and third housings (210, 220, 230). In one embodiment, the at least one antenna (A1, A2, A3, A4, A5, A6, A7, A8, A9, A10, A11, A12) may be configured to operate in at least one frequency band, either singly or in combination of at least two antennas. In one embodiment, the multi-foldable electronic device (200) may include a wireless communication circuit (e.g., a wireless communication module (192) of FIG. 1) disposed on a first substrate (e.g., a first substrate (281) of FIG. 8). In one embodiment, the wireless communication circuit may be configured to transmit or receive a wireless signal in a designated frequency band via at least one antenna (A1, A2, A3, A4, A5, A6, A7, A8, A9, A10, A11, A12). In one embodiment, the designated frequency band may include a low band of about 600 MHz to 960 MHz, a mid band of about 1700 MHz to 2200 MHz, a high band of about 2300 MHz to 2800 MHz, a sub-6 band of about 5 GHz to 6 GHz, an UHB band of about 3.2 GHz to 4.5 GHz, at least one of BT (Bluetooth), GPS (Global Positioning System), or WIFI (Wireless Fidelity).
[0168] According to various embodiments, the multi-foldable electronic device (200) may include a first conductive portion (311) and a second conductive portion (312) segmented through a first segment (321) and a second segment (322) spaced apart from the first segment (321) on a first side (2131) of the first housing (210). In one embodiment, the first conductive portion (311) may be configured to operate at least partially as a first antenna (A1), and the second conductive portion (312) may be configured to operate at least partially as a second antenna (A2). In one embodiment, the multi-foldable electronic device (200) may include a third conductive portion (313), a fourth conductive portion (314), and a fifth conductive portion (315) segmented through a third segment (323) and a fourth segment (324) spaced apart from the third segment (323) on a second side (2132) of the first housing (210). In one embodiment, the third conductive portion (313) may be configured to operate at least partially as a third antenna (A3), the fourth conductive portion (314) may be configured to operate at least partially as a fourth antenna (A4), and the fifth conductive portion (315) may be configured to operate as a fifth antenna (A5).
[0169] According to various embodiments, the multi-foldable electronic device (200) may include a sixth conductive portion (331) and a seventh conductive portion (332) segmented through a fifth segment (341) and a sixth segment (342) spaced apart from the fifth segment (341) on the third side (2231) of the second housing (220). In one embodiment, the sixth conductive portion (331) and the seventh conductive portion (332) may be configured to at least partially operate as a sixth antenna (A6). In one embodiment, the multi-foldable electronic device (200) may include an eighth conductive portion (333) segmented through a seventh segment (343) and an eighth segment (344) spaced apart from the seventh segment (343) on the fifth side (2233) of the second housing (220). In one embodiment, the eighth conductive portion (333) may be configured to at least partially operate as a seventh antenna (A7).
[0170] According to various embodiments, the multi-foldable electronic device (200) may include a ninth conductive portion (351), a tenth conductive portion (352), and an eleventh conductive portion (353) segmented through a ninth segment (361) and a tenth segment (362) spaced apart from the ninth segment (361) on the sixth side (2331) of the third housing (230). In one embodiment, the ninth conductive portion (351) may be configured to at least partially operate as the eighth antenna (A8), and the tenth conductive portion (352) and the eleventh conductive portion (353) may be configured to at least partially operate as the ninth antenna (A9). In one embodiment, the multi-foldable electronic device (200) may include a twelfth conductive portion (354), a thirteenth conductive portion (355), and a fourteenth conductive portion (356) segmented through an eleventh segment (364) and a twelfth segment (365) spaced apart from the eleventh segment (364) on the eighth side (2333) of the third housing (230). In one embodiment, the twelfth conductive portion (354) may be configured to operate at least partially as the tenth antenna (A10), the thirteenth conductive portion (355) may be configured to operate at least partially as the eleventh antenna (A11), and the fourteenth conductive portion (356) may be configured to operate as the twelfth antenna (A12).
[0171] According to various embodiments, the first segment (321), the sixth segment (342), and the tenth segment (362) may be arranged at positions that are aligned to coincide with each other in order to secure radiation performance of at least one antenna (A1, A2, A3, A4, A5, A6, A7, A8, A9, A10, A11, A12) when the multi-foldable electronic device (200) is in a folded state. In one embodiment, the second segment (322), the fifth segment (341), and the ninth segment (361) may be arranged at positions that are aligned to coincide with each other when the multi-foldable electronic device (200) is in a folded state. In one embodiment, the third segment (323), the eighth segment (344), and the twelfth segment (365) may also be arranged at positions that are aligned to match each other when the multi-foldable electronic device (200) is in a folded state. In one embodiment, the fourth segment (324), the seventh segment (343), and the eleventh segment (364) may also be arranged at positions that are aligned to match each other when the multi-foldable electronic device (200) is in a folded state.
[0172] FIG. 13A is a plan view of a multi-foldable electronic device showing a magnet arrangement structure in an unfolded state according to various embodiments of the present disclosure. FIG. 13B is a plan view of a multi-foldable electronic device showing a magnet arrangement structure in a folded state according to various embodiments of the present disclosure. FIG. 13C is a side view of a multi-foldable electronic device showing a magnet arrangement structure in a folded state according to various embodiments of the present disclosure.
[0173] Referring to FIGS. 13A to 13C, the multi-foldable electronic device (200) may include a first housing (210) including a first side member (213), a second housing (220) including a second side member (223) rotatably coupled to one side of the first housing (210) via a first hinge assembly (HA1), and a third housing (230) including a third side member (233) rotatably coupled to the other side of the first housing (210) via a second hinge assembly (HA2). In one embodiment, the multi-foldable electronic device (200) may include a flexible display (240) arranged to be supported by the first housing (210), the second housing (220), and the third housing (230). In one embodiment, the flexible display (240) can be folded with different designated curvatures based on the first folding axis (F1) and the second folding axis (F2) when transitioning from an unfolded state to an intermediate state in which the first housing (210) and the second housing (220) are folded, or when transitioning from an intermediate state to a folded state in which the third housing (230) is rotated to face the second housing (220).
[0174] According to various embodiments, the multi-foldable electronic device (200) may include a plurality of magnets (M1, M2, M3, M4, M5, M6, M7, M8) arranged in housings (210, 220, 230). In one embodiment, the plurality of magnets (M1, M2, M3, M4, M5, M6, M7, M8) may include first and second magnets (M1, M2) arranged in a first space (2101) of a first housing (210), third, fourth, fifth, and sixth magnets (M3, M4, M5, M6) arranged in a second space (2201) of a second housing (220), and seventh and eighth magnets (M7, M8) arranged in a third space (2301) of a third housing (230). In one embodiment, the first and second magnets (M1, M2) may be arranged to align with the fifth and sixth magnets (M5, M6), respectively, in the folded state. In one embodiment, the third and fourth magnets (M3, M4) may be arranged to align with the seventh and eighth magnets (M7, M8), respectively, in the folded state. In one embodiment, the first and second magnets (M1, M2) and the fifth and sixth magnets (M5, M6) may be arranged to generate an attractive force toward each other, respectively, in the folded state. In one embodiment, the third and fourth magnets (M3, M4) and the seventh and eighth magnets (M7, M8) may be arranged to generate an attractive force toward each other, respectively, in the folded state. In one embodiment, any one of the plurality of magnets (M1, M2, M3, M4, M5, M6, M7, M8) may be replaced with an electromagnet that is set to have a polarity when powered. In some embodiments, the first, second, fifth, and sixth magnets (M1, M2, M5, and M6) may be omitted. In some embodiments, the second, fourth, sixth, and eighth magnets (M2, M4, M6, and M8) may be omitted. In some embodiments, among the plurality of magnets (M1, M2, M3, M4, M5, M6, M7, and M8), in the folded state, another magnet aligned with one magnet arranged as a magnetic force generating member may be arranged as a magnetic force responding member and may be replaced with a metal that reacts to the magnetic force of the magnet.
[0175] According to various embodiments, the plurality of magnets (M1, M2, M3, M4, M5, M6, M7, M8) may be arranged at the closest positions to each other so as to increase the attractive force between the magnets (M1, M2, M3, M4, M5, M6, M7, M8) in the folded state of the multi-foldable electronic device (200), thereby helping to maintain the folded state. For example, the first and second magnets (M1, M2) may be arranged closer to the flexible display (240) than to the back surface (e.g., the second surface (212) of FIG. 2c) of the first housing (210) in the first space (2101). In one embodiment, the third and fourth magnets (M3 and M4) may be arranged closer to the back surface of the second housing (220) (e.g., the fourth surface (222) of FIG. 2C) than the flexible display (240). In one embodiment, the fifth and sixth magnets (M5 and M6) may be arranged closer to the flexible display (240) in the second space (2201) than the back surface of the second housing (220) (e.g., the second surface (212) of FIG. 2C). In one embodiment, the seventh and eighth magnets (M7 and M8) may be arranged closer to the flexible display (240) in the third space (2301) than the back surface of the third housing (230) (e.g., the sixth surface (232) of FIG. 2C).
[0176] According to various embodiments, in the folded state, the seventh and eighth magnets (M7, M8) aligned with the third and fourth magnets (M3, M4) may advantageously be positioned in the third space (2301) of the third housing (230) at a position close to the seventh side (2332) furthest from the second hinge assembly (HA2). In one embodiment, the seventh and eighth magnets (M7, M8) are positioned far from the second hinge assembly (HA2) and aligned with the third and fourth magnets (M3, M4), thereby inducing a high torque to be applied to the second hinge assembly (HA2) even with a relatively small-sized magnet. For example, in the multi-foldable electronic device (200), the closer the seventh and eighth magnets (M7, M8) arranged in the third housing (230) are to the seventh side (2332), the less likely they are to be randomly separated from the second housing (220) in the folded state. Accordingly, the arrangement of the third and fourth magnets (M3, M4) may be determined according to the arrangement positions of the seventh and eighth magnets (M7, M8). In some embodiments, the arrangement of the seventh and eighth magnets (M7, M8) may be determined according to the arrangement positions of the third and fourth magnets (M3, M4). Similarly, the arrangement of the first and second magnets (M1, M2) may also be determined according to the arrangement positions of the fifth and eighth magnets (M1, M2), which are arranged closer to the fourth side (2232) of the second housing (220) that is farthest from the first hinge assembly (HA1). It can be determined based on the arrangement positions of the six magnets (M5, M6). In some embodiments, the arrangement of the fifth and sixth magnets (M5, M6) may be determined based on the arrangement positions of the first and second magnets (M1, M2).
[0177] According to various embodiments, the third and fourth magnets (M3, M4) and the seventh and eighth magnets (M7, M8) may not overlap with the first magnet (M1) and the second magnet (M2) and / or the fifth magnet (M5) and the sixth magnet (M6), or may be disposed between the first magnet (M1) and the second magnet (M2) and / or between the fifth magnet (M5) and the sixth magnet (M6), when viewed in the unfolded state from the first hinge assembly (HA1) (e.g., hinge module) in the direction (e.g., -x-axis direction) and / or from the second hinge assembly (HA2) toward the first hinge assembly (HA1) in the direction (e.g., x-axis direction). In some embodiments, at least one of the third, fourth, seventh, and eighty-fourth magnets (M3, M4, M7, M8) may be arranged to overlap at least one of the first, second, fifth, and sixth magnets (M1, M2, M5, M6) when viewed in a direction from the first hinge assembly (HA1) toward the second hinge assembly (HA2) (e.g., in the -x-axis direction) and / or when viewed in a direction from the second hinge assembly (HA2) toward the first hinge assembly (HA1) (e.g., in the x-axis direction).
[0178] In various embodiments, at least one magnet among the plurality of magnets (M1, M2, M3, M4, M5, M6, M7, M8) is arranged to have a length that is longer in a direction parallel to the first folding axis (F1) and / or the second folding axis (F2) than in a direction perpendicular to the first folding axis (F1) and / or the second folding axis (F2) (e.g., in the x-axis direction or the -x-axis direction), thereby helping to improve the holding force that keeps the respective housings (210, 220, 230) in contact with each other in the folded state, and helping to easily separate (or separate) one housing from another when transitioning to the unfolded state.
[0179] FIG. 14A is a cross-sectional view of a multi-foldable electronic device taken along line 14A-14A of FIG. 13B according to various embodiments of the present disclosure. FIG. 14B is a schematic diagram of a magnet according to various embodiments of the present disclosure.
[0180] Referring to FIG. 14A, the multi-foldable electronic device (200) may include a third magnet (M3) disposed in the second housing (220), and a seventh magnet (M7) disposed in the third housing (230) and aligned with the third magnet (M3) in a folded state. In one embodiment, the third magnet (M3) and the seventh magnet (M7) may generate an attractive force with respect to each other so that the third housing (230) continuously maintains an overlapping state with the second housing (220) in a folded state. For example, the third magnet (M3) and the seventh magnet (M7) may be disposed in close positions in the second housing (220) and the third housing (230) so as to exert a strong attractive force with respect to each other with a relatively small size. In one embodiment, the third magnet (M3) may be positioned closer to the second rear cover (224) than to the flexible display (240) in the second housing (220). In one embodiment, the seventh magnet (M7) may be positioned closer to the flexible display (240) than to the third rear cover (234) in the third housing (230). In one embodiment, at least a portion of the surfaces of the third magnet (M3) facing the flexible display (240) may be inclined.
[0181] According to various embodiments, the multi-foldable electronic device (220) may include a shielding member (SM) (e.g., a conductive member) that may help reduce adverse effects on surrounding electronic components by generating a magnetic force only in a desired direction and shielding the magnetic force in the remaining area. In one embodiment, the shielding member (SM) may include a conductive member such as a conductive tape, a conductive plate, or ferrite. In one embodiment, the shielding member (SM) may be arranged in a manner that shields the remaining areas of the third magnet (M3) except in a direction toward the seventh magnet (M7) (e.g., in the z-axis direction). In one embodiment, the shielding member (SM) may be arranged in a manner that shields the remaining areas of the seventh magnet (M7) except in a direction toward the third magnet (M3) (e.g., in the -z-axis direction).
[0182] Although not shown, the arrangement structure of the fourth magnet (M4) and the eighth magnet (M8), the arrangement structure of the first magnet (M1) and the fifth magnet (M5), and / or the arrangement structure of the second magnet (M2) and the sixth magnet (M6) may also be substantially the same as the arrangement structure of the third magnet (M3) and the seventh magnet (M7).
[0183] Referring to FIG. 14b, at least one of the plurality of magnets (M1, M2, M3, M4, M5, M6, M7, M8) may include a magnet using a Halbach array that has a relatively small size and generates a relatively large magnetic force. For example, the magnet using the Halbach array may be configured by a plurality of sub-magnets (M-1, M-2) arranged such that at least a portion of areas having different polarities (N pole, S pole) face each other. In one embodiment, the magnet using the Halbach array may help arrange the plurality of magnets (M1, M2, M3, M4, M5, M6, M7, M8) to generate a strong magnetic force in a designated direction by concentrating a strong magnetic field in a designated direction (e.g., in the direction of the arrow in FIG. 14b) and exerting a canceling effect on the other side (e.g., in the opposite direction of the arrow in FIG. 14b).
[0184] FIG. 15A is a perspective view of a first hinge assembly according to various embodiments of the present disclosure. FIG. 15B is a perspective view of a first hinge module according to various embodiments of the present disclosure.
[0185] Referring to FIG. 15A, the first hinge assembly (HA) may include a first support plate (511) (e.g., a first support member or a first hinge plate) and a second support plate (512) (e.g., a second support member or a second hinge plate) arranged to be supported by at least one hinge module (520, 520-1). In one embodiment, the first support plate (511) and the second support plate (512) may be secured to at least a portion of at least one hinge module (520, 520-1). In one embodiment, the first support plate (511) and the second support plate (512) may be rotatably arranged relative to each other about a folding axis (e.g., the first folding axis (F1) of FIG. 13A) of a multi-foldable electronic device (e.g., the electronic device (200) of FIG. 3) via at least one hinge module (520, 520-1). As illustrated, the at least one hinge module (520, 520-1) is provided as two spaced apart hinge modules (520, 520-1), but is not limited thereto, and the at least one hinge module may include one or three or more.
[0186] Referring to FIG. 15b, the first hinge module (520) includes a support (521) (e.g., a rotator bracket or bracket) fixed to a first hinge housing (e.g., the first hinge housing (266) of FIG. 13c), a first shaft (HS1) rotatably arranged on the support (521) based on a first rotation axis (X1), a second shaft (HS2) rotatably arranged on the support (521) based on a second rotation axis (X2) spaced apart from the first rotation axis (X1), a first rotation member (522) rotatably arranged on the support (521) based on a third rotation axis (X3) (e.g., a first rotator), a second rotation member (523) rotatably arranged on the support (521) based on a fourth rotation axis (X4), and a first rotation member (524) rotatably arranged on the support (521) based on a fifth rotation axis (X5). The device may include a first fixed body (526) rotatably coupled to a member (522), a second fixed body (527) rotatably coupled to a second rotating member (523) about a sixth rotation axis (X6), a first arm member (524) (e.g., a first hinge arm) coupled to a first shaft (HS1) so as to be rotatable at one end about the first rotation axis (X1), and a second arm member (525) (e.g., a second hinge arm) coupled to a second shaft (HS2) so as to be rotatable at one end about the second rotation axis (X2). In one embodiment, the first fixed body (526) may be fixed to a first housing (e.g., the first housing (210) of FIG. 13a). In one embodiment, the second fixed body (527) may be fixed to a second housing (e.g., the second housing (220) of FIG. 13a). In one embodiment, the first hinge module (520) may include a first link (531) that is fixed to a first housing (e.g., the first housing (210) of FIG. 13a) and movably guides the other end of the first arm member (524), and a second link (532) that is fixed to a second housing (e.g., the second housing (220) of FIG. 13a) and movably guides the other end of the second arm member (525).In one embodiment, the first link (531) may be fixed to a first housing (e.g., the first housing (210) of FIG. 13A), and the second link (532) may be fixed to a second housing (e.g., the second housing (220) of FIG. 13A). In some embodiments, the first link (531) may be formed integrally with the first fixing body (526). In some embodiments, the second link (532) may be formed integrally with the second fixing body (527).
[0187] According to various embodiments, the first hinge module (520) may include a first cam structure (528) coupled with a cam structure formed at one end of the female members (524, 525) and a second cam structure (529) coupled with a cam structure formed at the other end of the female members (524, 525). In one embodiment, the first hinge module (520) may include a first torque generating structure that generates torque by pressing the first cam structure (528) in the direction of the female members (524, 525) (e.g., in the y-axis direction) through a first elastic member (CS1) (e.g., a first spring) arranged in a manner that a first shaft (HS1) passes through it and a second elastic member (CS2) (e.g., a second spring) arranged in a manner that a second shaft (HS2) passes through it. In one embodiment, the first hinge module (520) may include a second torque generating structure that generates torque by pressing the second cam structure (529) in the direction of the arm members (524, 525) (e.g., -y-axis direction) through a third elastic member (CS3) (e.g., a third spring) arranged in a manner in which the first shaft (HS1) passes through it and a fourth elastic member (CS4) (e.g., a fourth spring) arranged in a manner in which the second shaft (HS2) passes through it. In one embodiment, the first hinge module (520) may provide a pressing force in a rotational direction to cause the first housing (e.g., the first housing (210) of FIG. 13a) and the second housing (e.g., the second housing (220) of FIG. 13a) to transition from an unfolded state to a folded state or from a folded state to an unfolded state, through the first torque generating structure and the second torque generating structure, or may provide a free-stop function to cause the first housing (e.g., the first housing (210) of FIG. 13a) and the second housing (e.g., the second housing (220) of FIG. 13a) to stop in an intermediate state between the folded state and the unfolded state.
[0188] According to various embodiments, the first support plate (e.g., the first support plate (511) of FIG. 15A) may be arranged to be supported by the first arm member (524) and / or the first rotation member (522). In one embodiment, the second support plate (e.g., the second support plate (512) of FIG. 15A) may be arranged to be supported by the second arm member (525) and / or the second rotation member (523). In some embodiments, the first support plate (e.g., the first support plate (511) of FIG. 15A) may be secured to the first rotation member (522), and the second support plate (e.g., the second support plate (512) of FIG. 15A) may be secured to the second rotation member (523). For example, the first rotating member (522) is rotatably coupled to the support member (521) and the first fixed member (526) so as to rotate about two axes (e.g., the third axis (X3) and the fifth axis (X5)), so that in the folded state, the first supporting plate (e.g., the first supporting plate (511) of FIG. 15a) can have a different rotation angle from the first housing (e.g., the first housing (210) of FIG. 13a). For example, the second rotating member (523) is rotatably coupled to the support member (521) and the second fixed member (527) so as to rotate about two axes (e.g., the fourth axis (X4) and the sixth axis (X6)), so that in the folded state, the second supporting plate (e.g., the second supporting plate (512) of FIG. 15a) can have a different rotation angle from the second housing (e.g., the second housing (220) of FIG. 13a).Accordingly, in the folded state of the multi-foldable electronic device (e.g., the multi-foldable electronic device (200) of FIG. 13a), at least a part of the teardrop-shaped folded folding area (e.g., the fourth area (240d) of FIG. 2b) (e.g., the curved portion or the bending portion) of the flexible display (e.g., the flexible display (240) of FIG. 13a)) can be supported by the support plates (e.g., the first support plate (511) and the second support plate (512) of FIG. 15a) that are further folded at a larger angle (e.g., an angle of about 90 degrees) than the folding angle (e.g., about 90 degrees) of the first housing (e.g., the first housing (210) of FIG. 13a) and the second housing (e.g., the second housing (220) of FIG. 13a). In one embodiment, the second hinge module (520-1) may also be configured in substantially the same manner as the first hinge module (520).
[0189] FIG. 16A is a cross-sectional view of a multi-foldable electronic device in a folded state according to various embodiments of the present disclosure. FIG. 16B is a perspective view of the third magnet of FIG. 16A according to various embodiments of the present disclosure. FIG. 16C is a perspective view of a first hinge assembly supporting a flexible display according to various embodiments of the present disclosure.
[0190] Referring to FIGS. 16A to 16C, as described above, the third magnet (M3) disposed in the second housing (220) may be disposed to a position that overlaps at least partially with the first hinge assembly (HA1) in order to be aligned with the seventh magnet (M7) disposed close to the seventh side surface (e.g., the seventh side surface (2332) of FIG. 13A) of the third housing (230). For example, the third magnet (M3) may be disposed to a position that interferes with at least a portion of the second support plate (512) that supports the flexible display (240). In this case, the third magnet (M3) may help in the close arrangement in the direction of the first hinge assembly (HA1) (e.g., the x-axis direction) by including an inclined surface (M1-1) corresponding to the back surface of the flexible display (240) that is disposed to be inclined in the folded state. In one embodiment, the second support plate (512) may include a first cut area (5121) (e.g., a notch, a slit, or a groove) for inducing placement of a third magnet (M3) closer to the first hinge assembly (HA1). In one embodiment, the first cut area (5121) may be formed at a specified depth from an edge of the second support plate (512). In one embodiment, the size and / or shape of the first cut area (5121) may be determined by the size and / or shape of the third magnet (M3) accommodated therein. In one embodiment, the second support plate (512) may include a second cut area (5122) formed at a corresponding position for accommodating a fourth magnet (e.g., the fourth magnet (M4) of FIG. 13A) in the same manner.
[0191] FIGS. 17A to 17C are perspective views of a first hinge assembly supporting a flexible display according to various embodiments of the present disclosure.
[0192] In explaining the configuration of FIGS. 17a to 17c, the same reference numerals are given to configurations that are substantially the same as those of FIGS. 16a to 16c, and a detailed description thereof may be omitted.
[0193] Referring to FIG. 17A, the third magnet (e.g., the third magnet (M3) of FIG. 13A) and the fourth magnet (e.g., the fourth magnet (M4) of FIG. 13A) disposed through the cut areas (5121, 5122) of the second support plate (512) may cause damage to the flexible display (240) because they are disposed in a manner that they come into contact with the back surface of the flexible display (240). Therefore, the multi-foldable electronic device (200) may include a reinforcing member (240f) (e.g., a reinforcing plate) disposed between the back surface of the flexible display (240) and the cut areas (5121, 5122). In one embodiment, the reinforcing member (240f) may be formed of metal. In one embodiment, the reinforcing member (240f) may be positioned in such a way that it is attached to the back surface of the flexible display (240) or to the second support plate (512).
[0194] Referring to FIG. 17b, the second support plate (512) may include through holes (5123, 5124) formed at positions corresponding to a third magnet (e.g., the third magnet (M3) of FIG. 13a) and a fourth magnet (e.g., the fourth magnet (M4) of FIG. 13a). In one embodiment, the through holes (5123, 5124) may include a first through hole (5123) formed to a size that accommodates at least a portion of the third magnet (M3) and a second through hole (5124) formed to a size that accommodates at least a portion of the fourth magnet (M4).
[0195] Referring to FIG. 17c, the second support plate (512) may include recesses (5125, 5126) formed at positions corresponding to the third magnet (e.g., the third magnet (M3) of FIG. 13a) and the fourth magnet (e.g., the fourth magnet (M4) of FIG. 13a) and formed lower than the outer surface. In one embodiment, the recesses (5125, 5126) may include a first recess (5125) formed to a size to accommodate at least a portion of the third magnet (M3) and a second recess (5126) formed to a size to accommodate at least a portion of the fourth magnet (M4).
[0196] According to exemplary embodiments of the present disclosure, at least two of the cut areas (5121, 5122) formed in the second support plate (512), the reinforcing member (240f) arranged to cover the cut areas, the through holes (5123, 5124) or the recesses (5125, 5126) may be used in combination to accommodate the third magnet (M3) and the fourth magnet (M4).
[0197] FIGS. 18a and 18b are drawings illustrating the arrangement structure of the third magnet and the fourth magnet arranged in the first hinge assembly according to various embodiments of the present disclosure.
[0198] According to exemplary embodiments of the present disclosure, the third magnet (M3) and the fourth magnet (M4) may be arranged at various positions in the second housing (e.g., the second housing (220) of FIG. 13a) depending on the arrangement of the hinge modules (520, 520-1) of the first hinge assembly (HA1). In one embodiment, the hinge modules (520, 520-1) of the first hinge assembly (HA1) connecting the first housing (e.g., the first housing (210) of FIG. 13a) and the second housing (e.g., the second housing (220) of FIG. 13a) may be arranged at various positions depending on the arrangement of the third and fourth magnets (M3, M4).
[0199] Referring to FIG. 18A, the first hinge assembly (HA1) may include a first hinge module (520) and a second hinge module (520-1) arranged at a specified interval along the first folding axis (F1). In one embodiment, the third magnet (M3) may be arranged on the upper side of the first hinge module (520), and the fourth magnet (M4) may be arranged between the first hinge module (520) and the second hinge module (520-1). In this case, in the folded state, the third and fourth magnets (M3 and M4) may be aligned, and the seventh and eighth magnets (e.g., the seventh magnet (M7) and the eighth magnet (M8) of FIG. 13A) arranged in the third housing (e.g., the third housing (230) of FIG. 13A) may also be arranged in corresponding positions.
[0200] Referring to FIG. 18b, the first hinge assembly (HA1) may include a first hinge module (520) and a second hinge module (520-1) arranged at a specified interval along the first folding axis (F1). In one embodiment, the third magnet (M3) may be arranged on the upper side of the first hinge module (520), and the fourth magnet (M4) may be arranged on the lower side of the second hinge module (520-1). In this case, in the folded state, the third and fourth magnets (M3 and M4) may be aligned, and the seventh and eighth magnets (e.g., the seventh magnet (M7) and the eighth magnet (M8) of FIG. 13a) arranged in the third housing (e.g., the third housing (230) of FIG. 13a) may also be arranged in corresponding positions.
[0201] FIGS. 19A and 19B are drawings illustrating the arrangement structure of the first magnet and the second magnet arranged in the second hinge assembly according to various embodiments of the present disclosure.
[0202] According to exemplary embodiments of the present disclosure, the first magnet (M1) and the second magnet (M2) may be arranged at various positions close to the second hinge assembly (HA2) in the first housing (e.g., the first housing (210) of FIG. 13A) depending on the arrangement of the hinge modules (530, 530-1) of the second hinge assembly (HA2). In one embodiment, the hinge modules (530, 530-1) of the second hinge assembly (HA2) connecting the first housing (e.g., the first housing (210) of FIG. 13A) and the third housing (e.g., the third housing (230) of FIG. 13A) may be arranged at various positions depending on the arrangement of the first and second magnets (M1, M2).
[0203] Referring to FIG. 19A, the second hinge assembly (HA2) may include a third hinge module (530) and a fourth hinge module (530-1) arranged at a specified interval along the second folding axis (F2). In one embodiment, the first magnet (M1) and the second magnet (M2) may be arranged between the third hinge module (530) and the fourth hinge module (530-1) in the first housing (e.g., the first housing (210) of FIG. 13A). In this case, in the folded state, the fifth and sixth magnets (e.g., the fifth magnet (M5) and the sixth magnet (M6) of FIG. 13A) arranged in the second housing (e.g., the second housing (220) of FIG. 13A) may also be arranged in corresponding positions.
[0204] Referring to FIG. 19b, the second hinge assembly (HA2) may include a third hinge module (530) and a fourth hinge module (530-1) arranged at a specified interval along the second folding axis (F2). In one embodiment, the first magnet (M1) may be arranged on the upper side of the third hinge module (530) in the first housing (e.g., the first housing (210) of FIG. 13a), and the second magnet (M2) may be arranged between the third hinge module (530) and the fourth hinge module (530-1) in the first housing (e.g., the first housing (210) of FIG. 13a). In this case, in the folded state, the fifth and sixth magnets (e.g., the fifth magnet (M5) and sixth magnet (M6) of FIG. 13a) arranged in the second housing (e.g., the second housing (220) of FIG. 13a) aligned with the first and second magnets (M1, M2) can also be arranged in corresponding positions.
[0205] FIG. 20a is a drawing illustrating the arrangement structure of the seventh and eighth magnets in a third housing according to various embodiments of the present disclosure. FIG. 20b is a drawing of a comparative example illustrating the arrangement structure of the seventh and eighth magnets in a third housing.
[0206] Referring to FIGS. 20A and 20B , the multi-foldable electronic device (200) may include a third substrate (283) disposed in a third housing (230), and at least one electronic component electrically connected to the third substrate (283). In one embodiment, the at least one electronic component may include a key button (275), a socket device (277), a third battery (B3), and seventh and eighth magnets (M3, M4) disposed near the third substrate (283). In one embodiment, the third substrate (283) may be disposed parallel to the third battery (B3). In one embodiment, the socket device (277) may be disposed at a location (e.g., lower side) that does not interfere with the arrangement of the third battery (B3) and / or the third substrate (283).
[0207] According to various embodiments, the seventh magnet (M7) and the eighth magnet (M8) may be arranged at positions that take into account the arrangement efficiency of at least one electronic component (e.g., the socket device (277), the third battery (B3), or the third substrate (283)). If, in the comparative example illustrated in FIG. 20b, the socket device (277) is moved to be arranged above the eighth magnet (M8) in order to arrange the eighth magnet (M8) on the lower side of the third housing (230), the third battery (B3) may experience an arrangement loss equivalent to the illustrated area B3-1 due to the socket device (277), and this arrangement loss may reduce the battery capacity.
[0208] According to an exemplary embodiment of the present disclosure, the seventh magnet (M7) and the eighth magnet (M8) may be arranged in a manner that at least partially penetrates the first receiving hole (283-1) and the second receiving hole (283-2) formed in the third substrate (283), respectively. In one embodiment, the seventh magnet (M7) may be arranged near the key button (275). In one embodiment, the eighth magnet (M8) may be arranged between the key button (275) and the socket device (277). In one embodiment, the third battery (B3) may be arranged in the space of the third housing (230) secured through this arrangement structure of the seventh magnet (M7) and the eighth magnet (M8), thereby helping to increase the battery capacity.
[0209] According to various embodiments, a portable communication device includes a multi-foldable housing including a first housing (e.g., a first housing (210) of FIG. 13a), a second housing (e.g., a second housing (220) of FIG. 13a), and a third housing (e.g., a third housing (230) of FIG. 13a), a first hinge structure (e.g., a first hinge assembly (HA1) of FIG. 13a) disposed between the first housing and the second housing and rotatably connecting the first housing and the second housing with respect to each other, a second hinge structure (e.g., a second hinge assembly (HA2) of FIG. 13a) disposed between the first housing and the third housing and rotatably connecting the first housing and the third housing with respect to each other, and a plurality of hinges disposed in the first housing, the second housing, and the third housing. It may include a flexible display (e.g., a flexible display (240) of FIG. 13a), a first magnet (e.g., a first magnet (M1) and a second magnet (M2) of FIG. 13a) disposed in the first housing, a second magnet (e.g., a third magnet (M3) and a fourth magnet (M4) of FIG. 13a) disposed in the second housing, a third magnet (e.g., a fifth magnet (M5) and a sixth magnet (M6) of FIG. 13a) disposed in the third housing, and a fourth magnet (e.g., a seventh magnet (M7) and an eighth magnet (M8) of FIG. 13a) disposed in the third housing.
[0210] According to various embodiments, when the first housing and the second housing are folded, the first magnet and the third magnet may be arranged to face / stack each other.
[0211] According to various embodiments, the first magnet and the third magnet may be arranged to have the same magnetic direction (e.g., the z-axis direction of FIG. 13A) when the multi-foldable housing is in an unfolded state.
[0212] According to various embodiments, when the third housing is additionally folded after the first housing and the second housing are folded, the second magnet and the fourth magnet may be arranged to face / stack each other.
[0213] According to various embodiments, the second magnet and the fourth magnet may be arranged to have opposite magnetic directions when the multi-foldable housing is in an unfolded state.
[0214] According to various embodiments, the first magnet may be positioned closer to the flexible display than to the back surface of the first housing (e.g., the second surface (212) of FIG. 2c) between the flexible display and the first housing.
[0215] According to various embodiments, the second magnet may be positioned closer to the back surface of the second housing (e.g., the fourth surface (222) of FIG. 2c) than to the flexible display, between the flexible display and the second housing.
[0216] According to various embodiments, the third magnet may be positioned closer to the flexible display than to the back surface of the second housing (e.g., the fourth surface (222) of FIG. 2c) between the flexible display and the second housing.
[0217] According to various embodiments, the fourth magnet may be positioned between the flexible display and the third housing, closer to the flexible display than to the back surface of the third housing (e.g., the sixth surface (232) of FIG. 2c).
[0218] According to various embodiments, the second magnet may be accommodated in the second housing such that at least a portion of its surfaces, except for a surface facing the back surface of the second housing, is covered by a shielding member (e.g., a shielding member (SM) of FIG. 14a).
[0219] According to various embodiments, the first magnet may include a plurality of magnets arranged along the longitudinal direction of the second hinge structure (e.g., the first magnet (M1) and the second magnet (M2) of FIG. 13a), and the third magnet may include a plurality of magnets arranged at positions corresponding to the plurality of magnets of the first magnet (e.g., the fifth magnet (M5) and the sixth magnet (M6) of FIG. 13a).
[0220] According to various embodiments, the second magnet may include a plurality of magnets arranged along the longitudinal direction of the first hinge structure (e.g., the third magnet (M3) and the fourth magnet (M4) of FIG. 13a), and the fourth magnet may include a plurality of magnets arranged at positions corresponding to the plurality of magnets of the second magnet (e.g., the seventh magnet (M7) and the eighth magnet (M8) of FIG. 13a).
[0221] According to various embodiments, the second magnet and the fourth magnet may be disposed between a plurality of magnets constituting the first magnet (e.g., the first magnet (M1) and the second magnet (M2) of FIG. 13a) when viewed in a direction from the first hinge structure toward the second hinge structure.
[0222] According to various embodiments, the flexible display includes a bendable portion (e.g., the fourth region (240d) of FIG. 2b) that is folded by the first hinge structure, and at least a portion of the second magnet (e.g., the third magnet (M3) and the fourth magnet (M4) of FIG. 13a) may be disposed between the bendable portion and the back surface of the second housing portion.
[0223] According to various embodiments, the surface of the second magnet facing the flexible display (e.g., the inclined surface (M1-1) of FIG. 16b) may be inclined.
[0224] According to various embodiments, the first hinge structure includes a first support plate (e.g., the first support plate (511) of FIG. 15A) that supports a part of the flexible display and is disposed in the first housing, and a second support plate (e.g., the second support plate (512) of FIG. 15A) that supports another part of the flexible display and is disposed in the second housing, and a cut area (e.g., the first cut area (5121) and the second cut area (5122) of FIG. 15A) is formed in the second support plate, and the second magnet can be disposed to be at least partially accommodated in the cut area when the first housing and the second housing are completely folded with respect to each other.
[0225] According to various embodiments, the cut area may include a through hole formed in the second support plate (e.g., the first through hole (5123) and the second through hole (5124) of FIG. 17b).
[0226] According to various embodiments, a reinforcing member (e.g., reinforcing member (240f) of FIG. 17A) may be further included between the cut area and the flexible display.
[0227] According to various embodiments, the reinforcing member may be attached to the back surface of the flexible display or the second support member.
[0228] According to various embodiments, at least one of the first magnet, the second magnet, the third magnet, or the fourth magnet may be arranged to have a length in a direction parallel to a folding axis along which the first housing and the second housing fold (e.g., the first folding axis (F1) of FIG. 13a).
[0229] In addition, the embodiments of the present disclosure disclosed in this specification and drawings are merely specific examples to easily explain the technical contents according to the embodiments of the present disclosure and to help understand the embodiments of the present disclosure, and are not intended to limit the scope of the embodiments of the present disclosure. Therefore, the scope of the various embodiments of the present disclosure should be interpreted as including all changes or modified forms derived based on the technical ideas of the various embodiments of the present disclosure in addition to the embodiments disclosed herein.
Claims
1. In a portable communication device, A multi-foldable housing including a first housing (210), a second housing (220), and a third housing (230); A first hinge structure (HA1) disposed between the first housing and the second housing and rotatably connecting the first housing and the second housing with respect to each other; A second hinge structure (HA2) disposed between the first housing and the third housing and rotatably connecting the first housing and the third housing with respect to each other; A flexible display (240) placed in the first housing, the second housing, and the third housing; A first magnet (M1, M2) placed in the first housing; Second magnets (M3, M4) and third magnets (M5, M6) placed in the second housing; and A portable communication device including a fourth magnet (M7, M8) arranged in the third housing.
2. In paragraph 1, A portable communication device in which the first magnet and the third magnet are arranged to face / stack each other when the first housing and the second housing are folded.
3. In paragraph 1, A portable communication device in which the first magnet and the third magnet are arranged so as to have the same magnetic direction (z-axis direction) when the multi-foldable housing is unfolded.
4. In paragraph 1, A portable communication device in which, when the third housing is additionally folded after the first housing and the second housing are folded, the second magnet and the fourth magnet are arranged to face / stack each other.
5. In paragraph 1, A portable communication device in which the second magnet and the fourth magnet are arranged to have opposite magnetic directions when the multi-foldable housing is unfolded.
6. In paragraph 1, A portable communication device, wherein the first magnet is positioned closer to the flexible display than the back surface (212) of the first housing, between the flexible display and the first housing.
7. In paragraph 1, A portable communication device in which the second magnet is positioned closer to the back surface (222) of the second housing than to the flexible display, between the flexible display and the second housing.
8. In paragraph 1, A portable communication device in which the third magnet is positioned closer to the flexible display than to the back surface (222) of the second housing, between the flexible display and the second housing.
9. In paragraph 1, A portable communication device in which the fourth magnet is positioned closer to the flexible display than to the back surface (232) of the third housing, between the flexible display and the third housing.
10. In paragraph 1, A portable communication device accommodated in the second housing such that at least a portion of the surfaces of the second magnet, excluding the surface facing the back surface of the second housing, is covered by a shielding member (SM).
11. In paragraph 1, The above first magnet includes a plurality of magnets (M1, M2) arranged along the longitudinal direction of the second hinge structure, A portable communication device wherein the third magnet includes a plurality of magnets (M5, M6) arranged at positions corresponding to the plurality of magnets of the first magnet.
12. In paragraph 1, The second magnet includes a plurality of magnets (M3, M4) arranged along the longitudinal direction of the first hinge structure, A portable communication device wherein the fourth magnet includes a plurality of magnets (M7, M8) arranged at positions corresponding to the plurality of magnets of the second magnet.
13. In paragraph 1, A portable electronic device in which the second magnet and the fourth magnet are positioned between a plurality of magnets (M1, M2) constituting the first magnet when viewed in a direction from the first hinge structure toward the second hinge structure.
14. In paragraph 1, The above flexible display includes a bending portion (240d) that is folded by the first hinge structure, A portable communication device wherein at least a portion of the second magnet (M3, M4) is disposed between the bent portion and the back surface of the second housing portion.
15. In paragraph 14, A portable communication device wherein the surface (M1-1) of the second magnet facing the flexible display is inclined.
Citation Information
Patent Citations
Display device
KR1020160112090A
The false real estate property registration prevention system based on blockchain technology
KR1020220122416A
Flexible Display Devices
US20200323089A1
Mobile terminal
WO2018110749A1
KR20200127744A